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70-544 - TS: Ms Virtual Earth 6.0, Application Development - Dump Information

Vendor : Microsoft
Exam Code : 70-544
Exam Name : TS: Ms Virtual Earth 6.0, Application Development
Questions and Answers : 134 Q & A
Updated On : January 17, 2019
PDF Download Mirror : 70-544 Brain Dump
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70-544 TS: Ms Virtual Earth 6.0, Application Development

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70-544 exam Dumps Source : TS: Ms Virtual Earth 6.0, Application Development

Test Code : 70-544
Test Name : TS: Ms Virtual Earth 6.0, Application Development
Vendor Name : Microsoft
Q&A : 134 Real Questions

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Microsoft Microsoft TS: Ms Virtual

Microsoft research finds smart speakers might graphic rooms with sound | killexams.com Real Questions and Pass4sure dumps

Microsoft analysis has been doing some research into speaker and microphone arrays as often present in smart audio system.

they have got discovered that an array of speakers may be used for beamforming, enabling them to direct sound to a selected vicinity in a room. This allowed the researchers to make use of far-off audio system to create digital headphones for example.

even more unique, if the audio system were ultrasound competent, the researchers may use this beam-forming skill to scan a room, and use the echoes to create photographs of a room.

Microsoft writes:

akin to how bats and dolphins use echolocation, we're researching the use of beamforming in the ultrasound band to construct photographs of objects. we can focus the sound through the use of a loudspeaker array dealing with a given course, hear with the microphone array towards the identical direction, and seize the reflections from objects during this direction. through scanning the house, we can assemble an image of the objects in front of this ultrasound sensing machine. The short wavelength of ultrasound allows for detection of even small objects. This low-energy-the usage of ultrasound probing machine can generate three sorts of images: reflection, distance, and Doppler, making it possible to make use of in body place retrieval or gesture awareness applications.

Microsoft does not plan to use the know-how for anything else nefarious, however it is effortless to imagine sensible speaker organizations using this to become aware of what number of americans are in a room, and with extra sophisticated evaluation what they're doing.

read more at Microsoft analysis here.

by the use of WalkingCat


Microsoft Isn’t building a 4K, 240fps $400 Xbox next | killexams.com Real Questions and Pass4sure dumps

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We’ve already all started listening to about Microsoft and Sony’s plans for the next generation of console hardware. Microsoft is rumored to be working on a series of devices, with two new versions of the current Xbox One with cloud-streaming elements, in addition to a pair of new contraptions for the Xbox subsequent. The rumor we’re coping with nowadays issues these latter devices (both new consoles are reportedly Anaconda (excessive-conclusion) and Lockhart (finances).

GamingBolt these days chatted with games industry analyst Michael Pachter, who had what i can simplest name a fascinating take on what subsequent-era consoles could be capable of.

I expect a dumbed down console, just like the Steam console, the place it’s download simplest, and there’s no hard force or disc force,” Pachter instructed GamingBolt. “So I believe there could be a streaming gadget, like a $100 Xbox console that doesn’t run in 4K or 240 frames per 2d. after which I think there can be a more expensive $400 console that helps 4K, 240 FPS, virtual fact. I don’t recognize if there should be ‘fashions’. I don’t believe you’re going to get absolutely distinct devices.

If Microsoft launches an Xbox next able to 4K at 240 fps with digital reality on-precise for $400, i will print out a copy of this article and devour it on YouTube. The issue with this quote is that it’s utterly nonsensical. If we deal with the statements on capability as unbiased clauses, we're left with a excessive-conclusion console that targets 4K (a given, the Xbox One X already does this). The query of VR aid is an enchanting one, and we’re curious to know the way the Xbox next will put in force it. Splitting VR between Anaconda and Lockhart could harm normal uptake at a time when virtual fact scarcely wants extra limitations between it and the general public. actually, I’m still no longer bound if MS is willing to make a big bet on VR for its subsequent-gen consoles or now not.

This leaves the oddity of a 240fps frame price — and the certainty that no, next-gen consoles will not convey this performance while protecting anything else like expected next-technology visuals. There are a number of the reason why.

First, there’s been nothing like the imperative bounce in vigour efficiency that could make 240fps a possible body rate goal. in case you want 240fps in 4K and you need a front room console that doesn’t sound like a jet turbine, you’re going to need to retain vigour draw below 200W. To hit 240fps in 150W, you’d deserve to be capable of draw each body for approximately 0.625W. That’s at the least an order of magnitude greater efficient than existing GPUs can manage. 7nm simply isn’t going to deliver those types of improvements. If AMD or Nvidia may construct a 240fps 4K GPU for any amount of money, they’d be promoting the dang component, no longer stuffing it into a $four hundred console.

Now one might ask, “What about cloud gaming?” In thought, if MS had servers and rack space to devote to insane game rendering, couldn’t we ignore the bounds of paltry residing rooms and human ears? The reply is literally “yes,” nonetheless it buys you a great deal less than you could predict. A online game running at 240fps ought to deliver a new frame every 4.1ms. That doesn’t exactly leave lots of time for move-nation latencies.

gfgrid-latency-chart

This graph from NV is old-fashioned now, in terms of specs — however it shows simply how advanced it is to convey suited body charges and latencies within tight time limits over lengthy distance.

really, the easiest answer to “Why can’t we play games at arbitrarily high frame prices,” can be “because the quickest you need to run issues, the tougher it's to maintain them all synchronized.” A online game at 30fps updates every 33.3ms. A game running at 60fps supplies a new body of animation every 16.6ms. A video game at 240fps ought to carry a new frame in four.1ms, which means it has to complete the same quantity of work in roughly a quarter of the time compared to 60fps.

additionally, it’s not even clear what the factor of one of these body rate push can be. It’s now not as if anyone has a 240Hz tv with a real refresh price that quick. VR doesn’t require it. The aspect degrees you’d must be willing to settle for to make that kind of body price a truth might compare favorably to fashioned Xbox video games, but you aren’t pushing 4K and modern element at 240fps in a console or a pc. despite the fact that producers may hit the body fees, they’d be better off locking in at 60fps and the use of the further horsepower to function different forms of work — and we don’t predict MS and Sony to always goal even 60fps. it could make headlines if they did. 30fps has regularly been the goal, and whereas the introduction of the Xbox One X and PS4 seasoned have given console gamers a taste of quicker play at 1080p, it could be enormous for both groups to bring their baseline goals as much as 4K@60fps.

Now examine:


Microsoft's 2018, part 2: Azure records centres heat up and home windows 10? It burns! It burns! | killexams.com Real Questions and Pass4sure dumps

where had been we? Ah yes... it changed into the summer time of GitHub committers' discontent – as many seemed on in horror as Redmond swallowed it for $7.5bn in June. but issues were about to warmth up further...

July brings joy, junior Surfaces and jiggly financials

Hayfever season started neatly for Microsoft because the massive took one more potshot at Google and Apple's machine crown. might the surface Go take down Chromebooks and iPads? Or turned into a further surface RT catastrophe in the offing?

For the latter query, no – the Go is a much more able machine than Microsoft's unloved Arm effort. although, the previous is also extra of a wait-and-see, due to the fact the Go represents the worst of both worlds. It lacks an Arm CPU, which means battery existence can be superior, and while the Intel silicon assures more advantageous compatibility, performance hardly set the realm alight.

We reckoned it become most efficient to believe of the £379 (aside from keyboard) equipment as more like a netbook – cheap, cheerful and categorically no longer upgradable. A hardware runtime for workplace aimed toward college students, if you will.

The Go, of path, runs windows 10 (in S mode, if you want) and the OS became three in July, descended from a home windows NT codebase that itself celebrated its 25th anniversary this 12 months. All that aged code is one cause of the latest woes of the OS. no longer that it stopped income of PCs working the aspect rising for the first two quarters of 2018. With the conclusion of windows 7 support looming, the improve cycle gave pc makers some respite from the gloom surrounding the trade.

For its half, Microsoft registered a gigantic fiscal 2018, claiming more than $110bn in revenues. whereas Azure and the cloud have been trumpeted, with $9.6bn being trousered, that bit of Microsoft that receives less attention nowadays, very own computing (including windows), clocked up extra, registering $10.8bn.

How did Microsoft have a good time the bonanza? via handing out its groups collaboration platform for gratis and, er, increasing adjusting prices for relatively lots every thing else.

Oh expensive.

And as for jumping ship? Penguinistas have been horrified to peer the German state of decrease Saxony comply with Munich's example and dump Linux in favour of windows for a reported 13,000 users. on occasion that Microsoft dependancy is challenging to destroy.

August is the sunniest month

while Microsoft launched into a summer vacation, studies rolled in from users of floor professional 4 fondleslabs that a July update had left the costly devices fighting vigour.

Microsoft remained deaf to their pleas, with some users resorting to prison threats to have their precious contraptions restored to working order.

whereas the surface seasoned 4 incident may were accidental, Microsoft swung the axe another time at home windows cellphone in a far more deliberate style. This time it become the Microsoft keep, with a warning that no more app submissions for version eight.x of the platform can be authorised after Halloween and, by using July 2019, app updates would stop.

windows 10 cellular lives on for now, but if you're still clinging to your loved Lumia, the time actually has come to bid farewell.

despite the fact the usual imaginative and prescient of windows on cell devices is neatly and truly dead, windows on Arm is alive and kicking.

performance on the first technology of contraptions wasn't brilliant (barely draining the battery but fully draining the need to are living whereas awaiting notice to load), however the next wave of package, in line with the snappier Snapdragon 850 processor, made an appearance at August's IFA. Intel might only seem to be on nervously.

September comes, but home windows 10 1809 doesn’t

users hopeful of a sparkling windows 10 to assuage recollections of the April 2018 update, and considering that the '09' of 1809 may signify a September liberate, have been disappointed to learn that the element would be known as the "October 2018 update".

In our naivety, we hoped the codebase had got extra center of attention on first-rate. actually to the point where our information for names equivalent to "Crashy McCrashface" or "the one which might not set fireplace to the realm" can be made redundant. unluckily, in a few short weeks we would be regarding it as "the update of the Damned", however that turned into still to come back.

on the chance of a hyperlink that could make even the hosts of the BBC's One show wince, while it was very a good deal the calm earlier than the storm on the home windows 10 front, a storm of an entirely distinctive model turned into about to hit Microsoft's Azure cloud.

The South principal US Facility in Texas dropped over after storms crippled the statistics centre's cooling programs. This may still, in theory, have affected best a couple of unlucky users hosted out of the region, but confirmed up some flaws in the implementation of the Azure active directory carrier, which led to complications around the globe.

Microsoft's engineers carefully introduced servers returned online, although Skype and Outlook nevertheless suffered information throttling as Redmond tried to spread the weight with a borked authentication update.

It wasn't a good look, and an impressively open postmortem highlighted the considerations, together with the attention-opening admission that the Azure provider supervisor did not aid automatic failover and, er, used the affected records centre as its simple metadata storage web page. Ouch.

The incident came at an unfortunate time, as Microsoft tried to influence users that it may deal with all that grungy IT admin stuff for companies courtesy of its Microsoft Managed desktop carrier. You might even shift your home windows OS (together with windows 7) and office apps into the cloud the usage of windows virtual computing device. Assuming, of direction, the goal cloud is never having a wet day.

Some inside Microsoft could be taught from the open means wherein the Azure group pronounced what took place. yes, home windows, we're taking a look at you.

Microsoft additionally took an axe to its messaging platform, Skype, in September. The unloved interface of the latest edition of the chatty client received a clearing of cruft, which became to be applauded. much less good information become that, having acquired a dwell of execution, the historic "traditional" version of Skype turned into in reality for the chop. The axe changed into because of fall in November, plenty to the distress of users.

October. The cruellest month

it all started so smartly. Microsoft cheerfully introduced all the way through its Ignite adventure that home windows 10 had hit seven hundred million contraptions and followed it by using reminding us of less complicated, happier times with an add of early MS-DOS supply code to GitHub.

the warm glow of command line nostalgia could not, however, be sustained as Panos Panay took to a brand new York stage earlier than a select audience (no, oddly we weren't invited) to unveil updates to the enterprise's surface line.

thus far, so unsurprising. What took us aback turned into the advent of the home windows 10 October 2018 replace. The code had bypassed the home windows Insider unlock Preview ring wholly, going at once to generic availability. In a tweet that has aged primarily smartly, one of the windows managers, Brandon LeBlanc, insisted that every little thing can be best.

it's no longer irrelevant. We just did a small exchange in our method. 1809 goes to RP nowadays and may be important for assisting kick beginning servicing. slow was beneficial in assisting identity any show stopping bugs this time around.

— Brandon LeBlanc (@brandonleblanc) October 2, 2018

A day later, it grew to become clear that issues were not ok. not in any respect. considerations with Intel drivers left CPUs thrashed and batteries drained. The unloved part browser struggled with connections.

by day two, things took a lurch for the sinister, as reviews rolled in of the replace really wiping person files right through setting up, some thing that had been picked up via windows Insiders however, er, not noted.

through day 4, the humiliation changed into finished, and Microsoft pulled the update with a (now deleted) tweet from Insider supremo Dona Sarkar saying the construct became now not attainable. The tweet was mild on aspect and light on the note "sorry".

whereas we experienced few problems ourselves (apart from a damaged brightness manage that left our desktop illuminating a darkened convention hall like a miniature solar) others who had managed to get the update installed complained of Blue screens of demise thanks to broken keyboard drivers and issues with Intel audio drivers.

Microsoft issued a statement on the technical details of the statistics deletion worm but stopped wanting explaining the way it had been allowed to get to production. As for making bound it won't turn up once more? the gang will add a severity flag so it wouldn't pass over the feedback subsequent time.

Suffice to claim, we weren't impressed and called the circumstance a QA crisis of the home windows significant's personal making. As for the update of the Damned, it would stay MIA.

The home windows 10 incident took the shine off a further bumper set of financials, which set Microsoft on a course that could see it snatch Apple's crown of the area's Most positive company (based how you measure it). extra significant for the tech world turned into Microsoft becoming a member of the Open Innovation network and bringing with it 60,000 or so of its patents.

corporate veep Erich Andersen reckoned the circulation would imply "Microsoft might be able to do more than ever to support protect Linux" from patent assertions. Crikey.

a miles cry from yesteryear.

placing the woes of windows 10 and the October tottering of workplace 365 into point of view, although, was the passing of Microsoft's co-founder Paul Allen at sixty five following an additional bout of cancer.

be aware, be aware the re-unencumber of November

The home windows 10 October 2018 replace remained missing except mid November, when a gun-shy Microsoft gingerly launched the component as soon as again.

there were no excitable emissions from the Insider team this time around because the update become made accessible to a very, very select variety of contraptions. via the conclusion of the month, ad Duplex barely registered the replace's presence in its metrics.

quite a transformation from the exhilaration of April, and even a few short weeks before in October.

regrettably, whereas Microsoft lavished attention on its flagship operating device, different product traces persevered to wobble. home windows 10 pro clients saw themselves downgraded to mere home users as the windows Activation carrier suffered a reminiscence lapse, whereas OneDrive took the morning off (for european users at least).

UK clients also bought a wave of the fuck-up fairy's wand as an change on-line failure left their Outlook apps unable to join on a Monday morning, a controversy that endured into day after today.

The superstar of the show, despite the fact, become Azure Multi-aspect Authentication (MFA), which dropped over at first of a working week (demonstrating that Microsoft's cloud dislikes Monday as a great deal as the leisure of us). clients worldwide found their bills secured to the aspect the place they have been unable to log in.

Oops.

The subject was resolved via applying a hotfix and, er, turning every little thing on and off once again. Azure had struggled lower back to its feet by here day, despite the fact office 365 essential a little greater consideration from Microsoft's engineers.

we've got develop into aware of a full and frank account of such incidents from the Azure crew, and the MFA fiasco was no exception. Microsoft assured consumers it would not occur again. inside hours, the carrier fell over again and engineers had been forced into "cycling the critical lower back-conclusion capabilities".

Oops.

a dark December Christmas wish. The loss of life of facet

whereas more unwell-recommended updates to windows 10 broke Microsoft's top class floor ebook 2, the year changed into rounded out with more open-supply goodness and some hard love.

At its annual connect(); adventure, Microsoft introduced the open-sourcing of key frameworks necessary for the construction of windows laptop applications, including windows varieties and the windows Presentation basis (WPF).

Or somewhat, as far as WPF was worried, the beginning of an open-supply adventure.

whereas the circulation raised eyebrows, it became nothing compared to Microsoft identifying to drag the plug on the unloved facet browser.

although side became infrequently used for greater than downloading Chrome and had remained resolutely in single digits in terms of market share, the movement become mind-blowing.

Microsoft went extra, and referred to the layout engine utilized in side, EdgeHTML, would be replaced through the open-supply Chromium (additionally used by Google's rival browser Chrome).

It become quite a dramatic flourish to conclusion a 12 months that has viewed windows 10 stumble and CEO Satya Nadella's gamble on the cloud start paying off, in spite of the tottering of Azure. With the buy of GitHub and the ramping up of the business's dedication to open supply, Microsoft has endured to surprise those that be aware the Beast of historical.

For 2019 we'd similar to to see some of those billions of income head into the QA branch, adequate? ®


70-544 TS: Ms Virtual Earth 6.0, Application Development

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Test Name : TS: Ms Virtual Earth 6.0, Application Development
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Q&A : 134 Real Questions

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TS: Ms Virtual Earth 6.0, Application Development

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Anders Hejlsberg and Lars Bak: TypeScript, JavaScript, and Dart | killexams.com real questions and Pass4sure dumps

TypeScript, a typed superset of JavaScript that compiles to idiomatic (normal) JavaScript, is designed to make it easier to write cross-platform, application scale, JavaScript that runs in any browser or in any host. It was announced recently while Anders Hejlsberg and other key members of the TypeScript team were attending and speaking at the goto conference (an excellent cross-platform developer event!). Needless to say, Channel 9 was there Smiley

Google's V8 and Dart chief architect Lars Bak also happened to be at the event (he's currently leading the Dart team full time). Anders and Lars join us to talk candidly about TypeScript, JavaScript and Dart. Huge thanks to Anders and Lars for this excellent conversation.

Tune in. Enjoy.


Global PDB File Layout | killexams.com real questions and Pass4sure dumps

In my Windows 2000 book [2], detailed information about the extraction of public symbols is found, along with plenty of reusable source code. In this article, I will cover the more general task of parsing a PDB file and dissecting it into its parts without regarding the contents of its various streams. The sample application presented here is a simple Win32 console mode program that expects the path of a PDB file, and stores its constituents in separate files. Depending on the option switches specified on the command line, the following information can be extracted:

  • The PDB file header, containing general information about the file

  • The allocation bit table, which specifies what parts of the file are in use

  • The root stream, containing specific information about all data streams

  • All data streams listed in the root stream

  • The most basic structural property of a PDB file is its subdivision into pages of equal size. The most frequently used page size is 1KB (1,024 bytes), but my research has revealed that 2K and 4K pages are legal as well. (You can verify this by examining how Microsoft's dbghelp.dll processes PDB files.) A PDB stream is a sequence of file pages that contains coherent information. The most essential property of a stream is that its pages can be located anywhere in the file in arbitrary order.

    When a stream is read or written, a stream directory is responsible for telling the application which pages need to be accessed in which order. This directory is itself stored in a stream called the root stream. Additionally, an embedded Allocation Bit Table keeps track of used and unused pages. This table is indispensable as soon as "holes" appear in the PDB file due to the rearrangement of streams. If a stream is rewritten to the end of the PDB file, releasing the pages it occupied before, the allocation bit table reflects that the previous pages are free while the new pages are in use. This scheme is borrowed from simple operating systems such as MS-DOS with its FAT file system, in which a similar table specifies which disk sectors are allocated to files.

    Figure 1 shows the typical basic layouts of a PDB file in 1-KB, 2-KB, and 4-KB mode. Which page size should be used depends on the data to be stored in the streams. If the page size increases, the allocation bit table and the root stream become smaller. On the other hand, a larger page size results in more page overhang; that is, more file bytes are wasted if the stream size isn't an exact multiple of the page size. The same problem occurs in file systems, in which the disk sector size must be chosen properly to avoid excessive sector overhang. Most PDB files, such as the Windows 2000 symbol files and the debugging information generated by Microsoft Visual C/C++ 6.0, employ the 1-KB scheme, as depicted on the left side of Figure 1.

    Figure 1 Typical PDB file layouts.

    In 1-KB page mode, a maximum of 64MB can be stored in the PDB file, which simply results from multiplying the number of allocation bits by the page size. As I will show in a moment, PDB page numbers are stored as zero-based, 16-bit quantities. Therefore, the allocation bit table will never comprise more than 0[ts]10000 bits (8KB).

    The PDB header always occupies the first file page, and is followed by one or more pages containing the allocation bits. The structural definition of the header is shown in Listing 1. The first 44 bytes make up the ID string PDB_SIGNATURE_200, specifying the file type and version. At the time of this writing, the most recent version is 2.00, and this is the version used by the Windows 2000 symbol files and the Visual C/C++ debugging information. The dPageSize member indicates the page size applying to all pages in the file, and wStartPage is the zero-based page number of the first data page following the allocation bits. The size of the allocation bit table can always be computed by subtracting 1 from wStartPage (for the header page), and multiplying the result by dPageSize. The wFilePages member specifies the number of pages stored in the PDB file, and should always match the file size in bytes divided by the page size.

    Listing 1PDB File Header #define PDB_SIGNATURE_200 "Microsoft C/C++ program database 2.00\r\n\x1AJG\0" #define PDB_SIGNATURE_ 44 // size of signature (bytes) // ----------------------------------------------------------------- typedef struct _PDB_HEADER { BYTE abSignature [PDB_SIGNATURE_]; // PDB_SIGNATURE_200 DWORD dPageSize; // 0x0400, 0x0800, 0x1000 WORD wStartPage; // 0x0009, 0x0005, 0x0002 WORD wFilePages; // file size / dPageSize PDB_STREAM RootStream; // stream directory WORD awRootPages []; // pages containing PDB_ROOT } PDB_HEADER, *PPDB_HEADER, **PPPDB_HEADER;

    The RootStream member is another undocumented structure of type PDB_STREAM, as defined in Listing 2. This structure appears wherever a stream is defined. Here, it refers to the root stream that contains the sizes and locations of the data streams within the file. In a moment, we will revisit it when walking down the list of data streams in the root stream. Only the dStreamSize member of the PDB_STREAM structures is of interest when dealing with a PDB file on disk. The pwStreamPages member can obviously be used as a scratch pad by PDB read/write utilities that handle PDB information in virtual memory. Simply ignore this value because it might be a bogus address that was valid once upon a time.

    The RootStream structure is immediately followed by an array of 16-bit page numbers used by the root stream. Most PDB root streams I have seen so far don't exceed one page, so the awRootPages[] array usually contains a single entry only. One exception is the extraordinary large symbol file of ntoskrnl.exe, which has root stream that spans two pages.

    Listing 2 The Basic PDB Stream Structure typedef struct _PDB_STREAM { DWORD dStreamSize; // in bytes, -1 = free stream PWORD pwStreamPages; // array of page numbers } PDB_STREAM, *PPDB_STREAM, **PPPDB_STREAM;

    The allocation bits don't require much explanation. Each bit is associated with an individual page, and a value of 1 means that the corresponding page is currently available. The bits within a byte are ordered from least-significant to most-significant. That is, bit #0 of byte #0 refers to page #0, bit #1 of byte #0 to page #1, and so on. Note that the allocation bits of an on-disk PDB image do not necessarily reflect the status of the stored data stream pages. If you examine a couple of Windows 2000 symbol files, you will find out quickly that some data stream pages are located in pages that are marked free, and some pages marked in-use are not part of any stream. So, the allocation table is probably rebuilt by PDB readers/writers from the data in the root stream, and has meaningful content only while loaded into virtual memory.


    M Series Frequently Asked Questions | killexams.com real questions and Pass4sure dumps

    The following are the most frequently asked questions about National Instruments M Series data acquisition devices.

    Content

    1.   General

    Q: What are the features of NI M Series devices?Q: What makes an M Series “multifunction”?Q: What different M Series devices are available and what are their specifications?Q: How do M Series devices compare with legacy E Series devices?Q: Can M Series devices be used as drop-in replacements for existing E Series devices?Q: For which platforms and buses are M Series available?

    2.    Performance

    Q: What is the NI-STC 2 system timing controller?Q: Why are there six DMA channels on M Series devices?Q: What is the RTSI bus and how does it work?Q: What is a phase lock loop (PLL) and how does it work?Q: What is NI signal streaming?

    3.     Analog Input

    Q: How is calibration performed on M Series devices?Q: What is the NI-PGIA 2 amplifier?Q: What is temperature-drift?Q: What are programmable low-pass filters and how do they work?Q: What is isolation?Q: What signal conditioning devices are compatible with M Series devices for sensor measurements?

    4.     Analog Output

    Q: How do multiple analog output ranges improve accuracy?Q: What are programmable DC offsets for analog outputs?

    5.     Digital I/O and Counter/Timers

    Q: What is correlated digital  I/O and how does it work?Q: What is industrial digital I/O?Q: What are programmable power-up states?Q: What is the difference between software-timed and hardware-timed digital I/O?Q: What is the benefit of an onboard 80 MHz clock?Q: How do 32-bit counters compare to lower resolution counters?Q: Why is filtering important on counter/timer input lines?

    6.      Software

    Q: What application software is provided with M Series devices?Q: What driver software is provided with M Series devices?Q: What operating systems work with M Series?Q: Which application development environments work with M Series?Q: Do I need to make changes to my code if I replace an E Series device with an M Series device?Q: Which real-time tools work with M Series?

    7.      Service and Support

    Q: How do I get technical support for M Series devices?Q: What training is available for M Series devices?Q: What options are available for OEM customers?Q: What warranty is provided with M Series devices?

    General 

    Q: What are the features of NI M Series devices?A: National Instruments M Series multifunction data acquisition (DAQ) combines analog input, analog output, digital I/O, and counter/timers on a single device. With new, innovative analog and digital designs, M Series devices set a new standard for performance, I/O capability, safety, and value. NI-MCal technology ensures accurate analog measurements at all signal ranges by compensating for nonlinearity error during self-calibration. The NI-PGIA 2 custom instrumentation class amplifier provides true 16-bit resolution at 1 MS/s scan rates and low settling times. The NI-STC 2 system timing controller implements timing and synchronization between onboard subsystems and other devices in the same system. And, with new high-speed digital isolators, industrial M Series devices offer increased accuracy and safety by removing ground loops and rejecting high common-mode voltages.

    * For information about the new timing controller and NI-STC 2 refer to the analog input section.* For information about the new calibration scheme refer to the analog input section.* For information about the improved accuracy refer to the analog output section.

    Q:What makes an M Series “multifunction”?A: A single M Series DAQ device can provide the functionality of up to six different instruments: Digital multimeter (DMM), oscilloscope, arbitrary waveform generator, high-speed digital I/O device, and counter/timer device for frequency measurements.  M Series have up to 18-bit analog inputs that provide more than 5.5 digits of resolution for DC measurements. For dynamic measurements, M Series devices can sample at 1.25 million samples per second at 16-bit resolution (1 MS/s when scanning multiple channels). Digital signals can be clocked in and out with an onboard or external clock at up to 10 MHz, eliminating the need for a dedicated high-speed digital I/O device. Correlated DIO enables digital and analog functions to be synchronized with hardware-timed precision. With up to six DMA channels (PCI/PXI) and up to 4 NI signal streaming channels (USB), all of these functions can be performed simultaneously.  If a system requires additional functionality, an M Series device can be synchronized with other PCI or PXI instruments.

    Q:What different M Series devices are available and what are their specifications?

    A: M Series includes 5 families of devices: low-cost, high-performance, high-accuracy and industrial.  All M Series devices include 32-bit counters which operate at 80 MHz.  Table 1 outlines family specific information.

     

    Family

    Analog Input

    Analog Output

    Digital I/O

    Platforms

    Signal Conditioning

    Speed

    Resolution

    Speed

    Resolution

    Low-Cost

    Up to 250 kS/s

    16-bit

    833 kS/s

    16-bit

    1MHz, TTL, CMOS

    USB, PCI, PXI

    N/A

    Bus-Powered

    Up to 400 KS/s

    16-bit

    250 KS/s

    16-bit

    Static, TTL, CMOS

    USB

    N/A**

    High-Speed

    Up to 1.25 MS/s

    16-bit (1MS/s scanning)

    2.8 MS/s

    16-bit

    10 MHz*, TTL, CMOS

    USB, PCI, PXI

    N/A

    High-Accuracy

    Up to 625 kS/s

    18-bit (500 kS/s scanning)

    2.8 MS/s

    18-bit

    10 MHz*, TTL, CMOS

    PCI, PXI

    Low-pass filter

    Industrial

    Up to 250 kS/s

    16-bit

    Up to 250 kS/s

    16-bit

    TTL, CMOS, 24V

    PCI, PXI

    Isolation

                                                           Table 1. M Series Device Families

    *USB devices have a maximum digital I/O rate of 1 MHz.*Please see the analog input section for compatible signal conditioning platforms

    Q: How do M Series devices compare with legacy E Series devices?

    A: The following table itemizes the differences and improvements between E Series and M Series DAQ devices:

     

    Feature

    M Series

    E Series

    Analog Input

    Analog Input Channels

    8, 16, 32, 80

    16 or 64

    Sampling Rate

    Up to 1.25 MS/s (16-bit)

    Up to 1.25 MS/s (12-bit)

    Input Resolution

    16 or 18-bit

    12 or 16-bit

    Input Signal Type

    Current or Voltage

    Voltage

    Calibration Method

    NI-MCal (all ranges)

    Linear, 2-point (single range)

    Calibration Interval

    1 or 2 years

    1 year

    Programmable Low-pass Input Filters

    Yes1

    No

    Analog Output

    Analog Outputs Channels

    0, 2 or 4

    0 or 2

    Analog Output Rate

    up to 2.8 MS/s, 16-bit

    up to 333 kS/s, 16-bit

    Analog Output Resolution

    16-bit

    12 or 16-bit

    Analog Output Ranges

    Programmable per channel1

    ±10 V, 0-10 V

    Analog Output Offset

    Programmable per channel1

    0 V

    Digital I/O

    Digital I/O Lines

    24 or 48

    8 or 32

    Digital I/O Rate

    Software timed or up to 10MHz

    software-timed

    Digital Levels

    TTL/CMOS or 24V2

    TTL/CMOS

    Correlated DIO

    Yes

    No

    Digital Line Protection

    Improved over/under voltage (±20 V), over current protection

    -

    Counter

    Counter/Timers

    2, 32-bit

    2, 24-bit

    Counter Timebase

    80 MHz

    20 MHz

    Quadrature Encoder Inputs

    Yes

    No

    Counter Debouncing Filters

    Programmable per line

    None

    System

    Clock Synchronization

    PLL, RTSI

    RTSI

    DMA Channels

    63

    1 or 3

    Connector Type

    VHDCI (high density) or 37- pin DSUB

    SCSI II

    Isolation

    60 VDC continuous bank isolation, 1,400 Vrms/1,950 VDC channel-to-bus isolation, withstand for 5 seconds2

    -

                             Table 2. Functional Differences Between M Series and E Series DAQ Devices

    1Available on High Accuracy M Series devices2 Available on Industrial M Series devices3 M Series USB devices have Signal Streaming technology.  Please see the performance section for more information on signal streaming technology.

    Q: Can M Series devices be used as drop-in replacements for existing E Series devices?

    A: M Series devices maintain backward compatibility with the E Series accessories and terminal blocks by retaining the same 68-pin format. The connectors on M Series devices are different than those on E Series devices, but the pin count and pin mapping are similar, so you can use M Series devices without rewiring or refixturing your existing test system. NI offers low-cost cables to directly connect M Series devices to existing terminal block and signal conditioning accessories. For applications using legacy E Series DAQ devices, an M Series device can be used with existing accessories to upgrade the speed and accuracy of the system.  Cables designed for M Series devices also provide better shielding than E Series cables.

    * For information about software compatibility, refer to the software section of this document.

    Q: For which platforms and buses are M Series available?

    A: M Series devices are available in 32-bit, 33 MHz universal PCI, PCIe, PXI, PXIe, CompactPCI , USB 1.1 and USB 2.0*. Universal PCI devices can operate in any motherboard topology:

  • 5 V 33 MHz PCI (traditional PCI bus)
  • 3.3 V 33 MHz PCI
  • 3.3 V PCI 66 MHz
  • 3.3 V PCI-X 66 MHz
  • 3.3 V PCI-X 100 MHz
  • 3.3 V PCI-X 133 MHz
  • Other DAQ devices (non-M Series) are available for PCMCIA, and IEEE 1394 (FireWire).

    * USB 2.0 M Series devices will perform at slower USB 1.1 transfer rates when connected to a USB 1.1 host or hub.

    Performance 

    Q: What is the NI-STC 2 system timing controller?

    A: The NI-STC 2 is a custom-designed application-specific integrated circuit (ASIC) that controls interboard and intraboard synchronization and timing for multifunction DAQ operations.  The NI-STC 2 provides  

  • 6 DMA channels – dedicated scatter-gather DMA controllers for each function
  • Clocked digital I/O lines (up to 10 MHz)
  • 32-bit counter/timers with encoder compatibility
  • Generation and routing of the RTSI signals for multi-device synchronization
  • Generation and routing of internal and external timing signals
  • PLL for clock synchronization
  • Q:Why are there six DMA channels on M Series devices?

    A: Many plug-in DAQ devices are limited not by their acquisition or update rates, but by the rate at which they can transfer data to PC memory. M Series devices have up to six DMA channels so a single device can perform analog input, analog output, digital input, digital output, and two counter/timer operations simultaneously while leaving the PC processor free to execute other operations. Many legacy DAQ devices have a single DMA channel, requiring two or more operations executing simultaneously to interrupt the computer processor to control the data transfer.  This causes inefficiencies by blocking other operations from being processed by the PC. As data transfer rates increase and as more operations are simultaneously performed, these interrupts begin to monopolize PC processor time, causing system slowdown and eventually generating errors. M Series DAQ devices with the NI-STC 2 can execute up to six operations simultaneously at high rates while minimizing the potential for errors due to data loss or buffer overflows.

    Figure 1. The NI STC 2 has six DMA channels for dramatically improved data throughput.

    * This benchmark was performed with a PCI-6229 M Series device with DMA channels programmatically disabled to obtain data using 1 and 3 DMA channels. The test was performed on a 2 GHz Dell Dimension Desktop PC with Windows XP, 512 MB RAM and 30 GB hard drive.

    Q: What is the RTSI bus and how does it work?

    A: All plug in M Series devices include the RTSI bus, which uses a ribbon cable, or the PXI bus to route timing and trigger signals between two or more devices in the same system. With the RTSI bus, you can synchronize analog input, analog output, digital input/output, and counter/timer operations. For example, with the RTSI bus, three analog input devices can simultaneously capture data and be synchronized to a single master clock on one of the devices.

    The RTSI bus is available on M Series, E Series, and other DAQ devices, in addition to IMAQ and CAN hardware.Q: What is a phase lock loop (PLL) and how does it work?

    A: With the phase lock loop (PLL) functionality available on plug-in M Series devices, you can generate an 80 MHz signal that is synchronized (phase locked) to a 10 MHz signal routed from another device. This enables multiple devices in a single system to share a master timebase while running at 80 MHz.  With the PLL, PXI M Series devices can also synchronize to the PXI CLK 10 clock source.

    Q:What is NI signal streaming?A: NI signal streaming technology was created to maximize USB performance and sustain multiple bidirectional high-speed data streams.  This technology also adds device-side intelligence, custom data management hardware, and streamlined data control, thereby improving single-point performance by up to 1,600 percent for analog input and up to 250 percent for analog output.

     

    Figure 2. Single-Point Analog Input and Analog Output Performance Chart

    For more information about Signal Streaming, please consult Dev Zone Tutorial: NI Signal Streaming: Sustaining High-Speed Data Streams on USB. 

    Analog Input  

    Q: How is calibration performed on M Series devices?

    A: Electronic components such as ADCs are characterized by nonlinearities and drift due to time and temperature. Compensating for these inherent sources of error requires device self-calibration. Legacy data acquisition devices use an onboard precision voltage reference to perform a two-point calibration for a single measurement range. This method fails to protect against localized component nonlinearities, diminishing the measurement accuracy of the device. Additionally, because this method calibrates only a single input range, measurements that scan multiple channels at varying input ranges are limited in accuracy by the tolerance of a resistor network.

    M Series devices incorporate NI-MCal technology, a custom-designed linearization and calibration engine that use a highly stable reference to characterize gain, offset, and linearity errors at all ranges, providing range-specific calibration coefficients that are applied in software to provide accurate readings. The implementation of NI-MCal technology improves measurement accuracy by up to five times when compared to legacy DAQ devices. Additionally, an improved precision reference lowers the maintenance cost of the device by increasing the recommended calibration interval from one year to two years on devices in the high-speed and high-accuracy M Series families.

    Q: What is the NI-PGIA 2 amplifier?

    A: NI-PGIA 2 custom designed technology improves accuracy by minimizing settling time, which is a critical specification for multiplexed DAQ applications.  More precisely, settling time is the amount of time required for a signal that is being amplified to reach a specified level of accuracy.  If an amplifier does not have sufficient settling time, the measured signal will be digitized inaccurately. Settling time is specified by the amount of error after a given time. For any given level of resolution (or accuracy), shorter settling times are desired because they allow faster sampling rates without sacrificing accuracy.  Off-the-shelf programmable gain instrumentation amplifiers (PGIAs) are not optimized for scanning multiple channels at varying voltage levels on a single device.

    The following chart shows the settling time error of the high speed NI-PGIA 2 compared to a legacy NI-PGIA, and an off-the-shelf PGIA following a 20 V step.

    Figure 3. NI-PGIA 2 technology provides faster settling times than legacy and off-the-shelf PGIA technologies.

    Q: What is temperature-drift?A: The accuracy of your DAQ device changes with the temperature of the device. M Series devices use several technologies to minimize error due to temperature drift, including the following:

  • An onboard temperature sensor readable through software to monitor changing device temperatures
  • Components with consistent values over a wide temperature range
  • Compensating components that correct for error
  • Q:What are programmable low-pass filters and how do they work?

    A: A low-pass filter attenuates signals with frequencies above the cut-off frequency while passing signals below the cut-off frequency. The cut-off frequency is defined as the frequency at which the output amplitude has decreased by 3 dB. Low-pass filters attenuate noise and reduce aliasing of signals beyond the Nyquist frequency (defined as ½ the sampling frequency).

    Generally, analog input signals measured with plug-in DAQ devices require external signal conditioning to filter high-frequency noise. High Accuracy M Series devices have an onboard programmable filter, eliminating the need for external hardware to provide this filtering capability. This low-pass filter can be programmatically engaged or disengaged with a cutoff frequency of 40 kHz. 

    Q:What is isolation?

    A: Isolation electrically and physically separates sensor signals, which can be exposed to high voltage transients and noise,from the measurement system’s low-voltage backplane.  Isolation offers many benefits including:

  • Protection for expensive equipment, the user, and data from transient voltages
  • Improved noise immunity
  • Ground loop removal
  • Increased common-mode voltage rejection
  • Isolated measurement devices provide separate ground planes for the analog and/or digital front end(s) and the device backplane to separate the sensor measurements from the rest of the system. The ground connection of the isolated front end is a floating pin that can operate at a different potential from the earth ground.  Any common-mode voltage that exists between the ground and the measurement system ground is rejected (within the devices working voltage specification).  Isolation also prevents ground loops from forming, helping reduce noise in the measurement signals.

    Figure 4. Bank Isolated Analog Input Circuitry

    Industrial M Seriesdata acquisition devices use Analog Devices iCoupler digital isolators to provide 60 VDC continuous isolation and 1,400 Vrms/1,900 VDC channel-to-bus isolation withstand for 5 s on multiple analog and digital channels and support sampling rates up to 250 kS/s.

    For more information on isolation, please refer to DevZone Tutorial: Isolation Technologies for Reliable Industrial Measurements.

    Q:What signal conditioning devices are compatible with M Series devices for sensor measurements?

    A: All plug-in M Series devices work with both SCC and SCXI signal conditioning.  68-pin USB M Series devices also works with SCC signal conditioning. Both SCC and SCXI improve measurement accuracy by providing additional amplification of low-level sensor signals and with low-pass filters to eliminate noise sources, including 50/60 Hz noise from power lines. Additionally, SCC and SCXI provide sensor-specific signal conditioning such as CJC for thermocouples, and provide excitation power for sensors such as strain gages and RTDs.

    * For more information on signal conditioning please see this link. 

    Analog Output

    Q: How do multiple analog output ranges improve accuracy?

    A: Multifunction DAQ devices have traditionally offered two analog output ranges, either bipolar (±10 V) or unipolar (0 to 10 V). With this limitation, the bits of resolution of the digital-to-analog converter (DAC) are distributed equally across the entire range. For a 16-bit DAC with 65,536 codes of resolution (216), the minimum output step for a ±10 V range is 305 µV (20 V 65,536). It is impossible for the DAC to output voltage changes smaller than 305 µV.

    High Accuracy M Series DAQ devices feature programmable output ranges that distribute the number of bits over a much smaller voltage range. For example, with a ±1 V range and 16-bit DAC resolution, the device can output 31 µV changes.

    Q: What are programmable DC offsets for analog outputs?A: Some applications require small changes in analog output level around a fixed DC offset. For example, to model 5 V power supply noise requires analog outputs that can simulate a small amount of noise (submillivolts) on a 5 VDC signal. With a traditional multifunction DAQ device that has a single output range without offsets, the range would have to be set at 0 to 10 V. Even with 16-bit resolution, the digital-to-analog converter (DAC) could only represent 153 µV changes.

    High Accuracy M Series devices have programmable analog output offsets which enable much finer resolution around a specified offset value. When used in conjunction with the programmable range feature, the programmable offset enables an M Series board to model 5 V power supply noise by using all 16-bits of resolution on a 4 to 6 V range (5 V offset with a ±1 V range). This improves the minimum code width to 31 µV. 

    Digital I/O and Counter/Timers 

    Q: What is correlated digital I/O and how does it work?

    A: Correlated I/O enables synchronization of onboard digital I/O lines to a clock reference.

  • Internal or External Clocks
  • Multiple digital lines on the same device can be synchronized to a common clock which enables multibit pattern detection.  It also enables clocked digital waveform generation or acquisition at rates up to 10 MHz.

  • Analog I/O and counter/timers
  • M Series enables you to time-correlate different operations with analog I/O, digital I/O and counter/timers.  For example, you can synchronize digital and analog samples in time by sharing your AI clock as the source of your digital I/O clock. To sample a digital signal independent of an AI, AO, or DO operation, you can configure a counter to generate the desired DI clock or use an external signal as the source of the clock.

    Q: What is industrial digital I/O?A:Industrial applications often involve requirements beyond the capabilities of a typical measurement device. For example, many industrial sensors and actuators require 24 V logic levels and may operate at different voltage potentials that can cause ground loops. Safety for the measurement or control system and safety for the user or operator are equally important. With voltage levels up to 30 V, high current drive, and isolation, NI M Series devices can connect directly to a wide array of industrial pumps, valves, motors, and other sensors/actuators while providing a high degree of safety and reliability.Q: What are programmable power-up states?

    A: When a computer is powered on, various components begin their own power-up routines to ensure that they reach a functional and expected state. If digital outputs are used inside the computer to control machinery or an industrial process, it is important that the digital outputs are also initialized to a known state. Changing the outputs typically requires that an application is running, but the module may be on for several minutes before the application can start.

    Using programmable power-up states, you can configure the initial digital output states in software to ensure glitch-free operation when connected to industrial actuators such as pumps, valves, motors, and relays.  An Industrial M Series device holds these output states after receiving power, so your computer can boot and your software application can begin running. Programmable power-up states are glitch-free, meaning the outputs never go through an incorrect state during power up. You can configure each individual digital line as high-output or low output. Each Industrial M Series device stores the settings in onboard non volatile memory and implements the power-up states instantaneously after power is applied to the device.

    Q: What is the difference between software-timed and hardware-timed digital I/O?

    A: Software-timed digital I/O is system dependent, and speeds vary based on the processing power of the host PC. This is also referred to as “static” DIO. Clocked digital I/O is hardware-timed, meaning the update or sampling rate is governed by a stable clock source. This clock is independent of the system used.  M Series devices can use an onboard clock source or an external signal as the digital timebase.

    Q: What is the benefit of an onboard 80 MHz clock?

    A: The 80 MHz timebase can be used as the source input to the 32-bit general-purpose counter/timers. It improves the accuracy of frequency measurements and generation versus the 20 MHz timebase on E Series DAQ devices. A faster timebase improves pulse width and period measurement accuracy and enables faster pulse train signal generation.

    Figure 5. Single Point Frequency Measurement

    Q: How do 32-bit counters compare to lower resolution counters?

    A: A counter is specified by the number of events it can count before resetting. For example, a 32-bit counter can count 232, or over 4 billion events. This is over 65 thousand times more register capacity than the 16-bit counter/timers found on other DAQ devices. If a counter/timer exceeds its maximum count capacity during an operation, the register resets and data is lost.

    Q: Why is filtering important on counter/timer input lines?

    A: In process control applications involving frequency sensors and in relay monitoring applications, the sensors often exhibit bouncing, especially if a mechanical relay drives the output of the sensor. With input filters enabled on the counter/timer lines on M Series device, it samples the input on each rising edge of a filter clock. When the filter clock has sampled the signal high on N consecutive edges, the low to high transition is propagated to the rest of the circuit. The value of N depends on the filter setting. In Figure 6, the value of N is set to 5.

    Figure 6. Filtered Counter/Timer Line 

    Software  

    Q: What application software is provided with M Series devices?

    A: LabVIEW SignalExpress LE is included with all M Series devices.  National Instruments LabVIEW SignalExpress is interactive, measurement software for quickly acquiring, analyzing, and presenting data from hundreds of data acquisition devices and instruments, with no programming required.  To learn more about LabVIEW SignalExpress LE, visit http://www.ni.com/labview/signalexpress/.

    Q: What driver software is provided with M Series devices?

    A: Many DAQ devices come with just a basic DAQ device driver. Some devices require the separate purchase of driver software even for basic functionality. All M Series devices include NI-DAQmx measurement services and driver software.

    NI-DAQmx measurement services software controls every aspect of your DAQ system: configuration, programming, and low-level operating system device control. With NI-DAQmx software, you can quickly configure and acquire measurements. NI-DAQmx features virtual channels that automatically scale raw data into engineering units.  NI-DAQmx also features the DAQ Assistant, a utility that configures DAQ applications with zero programming and automatically generates code.

    NI-DAQmx software goes far beyond a basic DAQ driver to deliver increased productivity and performance. Consider the following software criteria when you purchase your DAQ system.

     

     

    Measurement Services Features

    NI-DAQmx Measurement Services

    Basic DAQ Driver

    Productivity

    Automatic code generation

    *

    Configuration management

    *

    Analog, digital, and counter test panels

    *

    o

    Scaling to real-world units

    *

    Single API for all hardware and I/O types

    *

    Measurement examples

    >3000

    <20

    Pin-point error diagnostics

    *

    Performance

    Optimized multithreaded I/O performance

    *

    Optimized single-point loops

    *

    o

    Real-time capabilities

    *

    Advanced calibration

    *

    Table 3. Comparison Between NI-DAQmx and Basic DAQ Driver Software

    Key: * Best o Good — Not Provided

    For more information on the DAQmx driver, please see Transition from Traditional NI-DAQ to NI-DAQmx in LabVIEW

    Q:What operating systems work with M Series?

    A:

  • Windows 2000/XP/Vista x86/Vista x64
  • Windows 98/ME/NT2
  • Windows Mobile 5, Pocket PC 20031
  • Real Time OS, RTX1
  • Mac OS X1
  • Mandrakelinux 10.1 Official3
  • Mandriva Linux 20062
  • SUSE LINUX Professional 9.2 and 9.33
  • Red Hat Enterprise Linux WS 33
  • Red Hat Enterprise Linux WS 41
  • 1 NI-DAQmx Base driver required for this operating system.  Please see the specific driver’s readme file for a list of supported devices and supported features.2 These operating system are supported under an older version of the DAQmx driver. Please see the specific driver’s readme file for a list of supported devices.3 These operating system can be used with an older version of the DAQmx driver or a current version of the DAQmx Base driver. Please see the specific driver’s readme file for a list of supported devices.

    Please visit http://www.ni.com/downloads/ to find specific drivers and readme files mentioned above.

    Q:Which application development environments work with M Series?

    A: M Series DAQ devices work with every development environment compatible with NI-DAQmx, including:

  • LabVIEW 7.x or later
  • LabVIEW Real-Time 7.1 or later*
  • LabVIEW SignalExpress LE or higher
  • LabWindows/CVI 7.x or later
  • Measurement Studio 7.x or later
  • ANSI C/C++
  • C#
  • Visual Basic .NET
  • Visual Basic 6.0
  • *Not compatible with USB devices

    Q:Do I need to make changes to my code if I replace an E Series device with an M Series device?

    A: Existing NI-DAQmx applications written for an E Series device run unchanged on an M Series device. You may need to perform additional programming to take advantage of the advanced timing and synchronization features of M Series.

    The Traditional NI-DAQ Compatibility VIs make it possible to port most existing applications written with Traditional NI-DAQ to operate under NI-DAQmx with M Series. However, you will not gain the NI-DAQmx benefits of multithreaded I/O speed, automatic trigger routing, and DAQ Assistant code generation. Additionally, the Compatibility VIs do not work with SCXI signal conditioning. At a low-level, the Compatibility VIs redirect software calls to NI-DAQmx VIs. These VIs handle most, but not all functionality. Depending on the complexity of your application, you may need to rewrite your application using NI-DAQmx. The Traditional NI-DAQ Compatibility VIs are only available for LabVIEW. You can download the Traditional NI-DAQ Compatibility VIs from http://joule.ni.com/nidu/cds/view/p/id/822/lang/en.

    Q: Which real-time tools work with M Series?

    A: All PCI and PXI M Series devices can be used with LabVIEW Real-Time and NI-DAQmx to build reliable, deterministic, stand-alone applications with no user interaction required. The NI-DAQmx API is optimized for easier implementation and faster development of real-time applications than traditional real-time operating systems.

    USB M Series devices are not compatible with LabVIEW Real-Time.

    Service and Support

    Q:How do I get technical support for M Series devices?

    A: NI offers extensive support options through www.ni.com/support. You can call, e-mail, or troubleshoot problems online with NI engineers. In addition, ni.com provides a wealth of resources for customers--from user getting started with M Series to DAQ experts looking for tips from the designers. Online resources include:

  • Downloadable drivers and updates for NI-DAQmx and other measurement products
  • Over 3,000 KnowledgeBase entries
  • Online product manuals (downloadable help files and PDFs)
  • Over 3,000 example programs
  • Tutorials and application notes
  • Q:What training is available for M Series devices?

    A: The concepts of DAQ are taught in regional seminars and customer education courses. You can get a free hands-on tutorial through one of our regularly scheduled training seminars, offered by your local field engineer. To find a free seminar in your area, visit www.ni.com/events.

    National Instruments also offers a 3-day DAQ course that covers the theory of DAQ and includes hands-on work with multifunction DAQ, signal conditioning, and NI-DAQmx software. To learn more or to enroll in a course, visit ni.com/training.

    Q:What options are available for OEM customers?

    A: In addition to supplying free 7-day evaluation kits and world-class technical support, NI offers pricing discounts for qualified OEM applications. Several devices are designed for use in such applications. M Series leads the market in MIO channel density, lowering your cost and space requirements. M Series devices offer up to 80 analog input, 4 analog output, and 48 digital I/O lines. In addition, 32-bit counter/timers can generate or measuring long pulses without the need to cascade multiple channels. With NI-DAQmx software you can quickly implement and test your design iterations, greatly reducing your development time and cost.

    For more information on hardware and software customization, visit www.ni.com/oem or contact your local NI representative.Q:What warranty is provided with M Series devices?

    A: All M Series devices have a 1-year warranty that covers against defects in workmanship and material from the date of shipment of the product. Extended warranty options are available that can help you to fix your maintenance costs over 2 or more years. Contact your National Instruments sales representative for more information.



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    References :


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    Issu : https://issuu.com/trutrainers/docs/70-544
    Scribd : https://www.scribd.com/document/353325319/Killexams-com-70-544-Braindumps-and-Practice-Tests-with-Real-Questions
    Wordpress : http://wp.me/p7SJ6L-1eQ
    Dropmark-Text : http://killexams.dropmark.com/367904/12210153
    Blogspot : http://killexamsbraindump.blogspot.com/2017/11/dont-miss-these-microsoft-70-544-dumps.html
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    zoho.com : https://docs.zoho.com/file/5wmnz408dd1a70255459a9f0628cd01a99203






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    Microsoft 70-544 Exam (TS: Ms Virtual Earth 6.0, Application Development) Detailed Information



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