Software Radio Basics

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Pentek, now Mercury Systems

Pentek, now Mercury Systems

День тому

Topics include Complex Signals, Digital Downconverters (DDCs), Receiver Systems & Decimation and Digital Upconverters (DUCs) Transmitter Systems & Interpolation.
WHO WE ARE
* About Us: www.mrcy.com/company
* Our Capabilities: www.mrcy.com/capabilities
* Our Products: www.mrcy.com/products
ADDITIONAL RESOURCES
* White papers, webinars, articles and more: www.mrcy.com/resourcehub
FOLLOW US ON SOCIAL MEDIA
* LinkedIn: / mercury-systems
* Twitter: / mrcy

КОМЕНТАРІ: 44
@huutruongle
@huutruongle 3 роки тому
It's a most perfect fundamental SDR presentation I've ever seen. Thanks for your contribution.
@gauravpride1985
@gauravpride1985 7 років тому
The ultimate presentation I have ever seen on SDR. Thanks for your such a nice presentation.
@maxsocial
@maxsocial 6 років тому
Thank you for this clear presentation. It was very helpful!
@prabhakarrao6197
@prabhakarrao6197 5 років тому
It's crisp and clear explanation of SDR and any lay man can also understand the modules required for SDR.
@georgeclooney8541
@georgeclooney8541 3 роки тому
Good explanation to the basics. i would like to add that you also need another band pass filter at the RF stage to counteract the signals at image frequencies
@richardphillips2405
@richardphillips2405 4 роки тому
Hello. This video has been one of the best videos on IQ modulation and demodulation. Thank you.
@elalsagala8460
@elalsagala8460 6 років тому
Thx for the explanation. It REALLY helps me a lot
@kumark353
@kumark353 2 роки тому
Excellent presentation of software Radio with much needed basics
@skidmoremusictech528
@skidmoremusictech528 4 роки тому
Outstanding presentation! Presents a complex topic very clearly and in an easy to understand manner! Thank you!
@panduwilantara3070
@panduwilantara3070 Місяць тому
very amazing explanation, now i understand about SDR include I/Q Signal
@robertocosentino7616
@robertocosentino7616 4 роки тому
great explanation! clear and persuasive. Many thanks for sharing and making understanding simpler ;)
@AbhishekKumar-xu9vk
@AbhishekKumar-xu9vk 5 років тому
Thank you for a clear explanation.
@chihokang8839
@chihokang8839 3 роки тому
Thanks a lot. This is the best explanations on SDR that I've ever seen. This is the real deal.
@guygadbois8989
@guygadbois8989 4 роки тому
This was extremely helpful. Thank you.
@TheSemtexCow
@TheSemtexCow 3 роки тому
Thanks for such a simple to understand video, its helped me understand a new subject.
@Anamika8
@Anamika8 3 роки тому
Thanks a lot for the useful lecture!
@phillipneal8194
@phillipneal8194 2 роки тому
This is wonderful. I just found it on youtube. Thank you very much.
@hassantj5775
@hassantj5775 3 роки тому
Very impressive. & easy to digest. Really a wonderful job.
@MH-ij9lx
@MH-ij9lx 3 роки тому
Wow. Fantastic. Thanks!
@andreaquadri7890
@andreaquadri7890 4 роки тому
Well done!
@lamarts1000
@lamarts1000 5 років тому
Excellent presentation!! Thank you!
@hariwi39
@hariwi39 2 роки тому
Clear explanation of presentation, thanks
@ilanyacobi2918
@ilanyacobi2918 3 роки тому
Excellent explanation thank you so much
@Frankey2310
@Frankey2310 8 місяців тому
Yeah, sorry if it's there and I've just missed it, but but how seems like you left out something major, i.e. HOW does this "digital complex mixer" get I and Q from just the sampled amplitude values? From what I could gather from the source code of uSDX (seemingly the only source on the subject), what it does is sample at 2 * Fs, treating even samples as I, odd as Q, but linearly interpolates the Is, replacing each one with the average of it and the next one. What this clearly does do is shift one of the streams in time by one sample period, so that the synthetic Is coincide with Qs. While the thing does work in the end, - the device does seem to receive SSB, which is the only use for the I/Q data there, as far as I can tell, - I can't possibly see a) how can those I values be correct beyond the simple assumption that both domains are (-1; 1), and, more importantly, b) any basis for the downright strange assumption that a shift by one sample in the array is equivalent to a 90 degree phase shift. This technique, which quacks like a dirty hack for the anemic 8-bit MCU it's written for, is called a "Hilbert transform" in the comments. Whatever. Correct or not, the whole transition from amplitude samples to I, Q pairs doesn't seem like an "implementation detail" you can just omit here, especially when the end result of the formulation is supposed to be a general SDR, and not some special case transceiver.
@tempusFugit1337
@tempusFugit1337 3 роки тому
Very good explanations.
@elijahdrug2931
@elijahdrug2931 6 років тому
Thank you
@tttuberc
@tttuberc 10 місяців тому
This video is really helpful for me. Thank you very much
@robc3863
@robc3863 2 роки тому
Looking for a detailed overview of the Tyloe quadrature demodulator that shows how the recombination of the 4 samples, 0/270, 90/180, results in the I and Q signals.
@ianventer4017
@ianventer4017 3 роки тому
Hi, everyone just a question regarding the SDR transmission, where will modulation occur? I presume in the DSP stage but at what frequency? Why cant it be directly modulated onto the IF frequency avoiding the need for the digital upconverter? Any response appreciated
@phillipneal8194
@phillipneal8194 8 місяців тому
Excellent presentation. But the devil is in the details. Where do I get an ADC and a DAC breakout board at a cheap enough price( < $20) that will handle 200 MSPS ?
@russelm5107
@russelm5107 3 роки тому
Perfect and Simple and Humble and to this and to tan and con and the back! Perfect Okay!
@kozlovskyi
@kozlovskyi Місяць тому
omg. Finally I got my answers
@terjeoseberg990
@terjeoseberg990 4 місяці тому
At 7:40 I believe that’s only true when you don’t care about the negative frequencies.
@thomaskosvic6103
@thomaskosvic6103 2 роки тому
The term bandwidth is used profusely in this presentation but is not defined mathematically or graphically in this presentation as far as I can see.
@superbcutter16
@superbcutter16 2 роки тому
is there anyone who can help me how to design a GNSS/GPS receiver using Simulink or GNU Radio
@zynthos9
@zynthos9 5 років тому
At 4:45 you say sin of f2 is real and cosin of f2 is imaginary, but in the previous slide this was reversed; sin was imaginary and cosin was real. Can you explain this discrepancy?
@m1geo
@m1geo 4 роки тому
It's wrong. cos is real (i), sin is imag (q). The slide is incorrect.
@AM-tu1rc
@AM-tu1rc 3 роки тому
@@m1geo Thanks, I was totally confused until I read your comment
@bennguyen1313
@bennguyen1313 4 роки тому
So the reason you multiply/mix the input by an analog RF tuner, is only to bring the signal to the area of the band-pass hardware filter? Would Direct-Sampling remove this Intermediate-Frequency requirement, and if so, why isn't it the preferred approach? However, it still feels like a free lunch that you can sample and get a *single* ADC value, but then digitally mix (DDC) to get 2 baseband samples (the cosine (Q) and sine data (I))! After-all, couldn't more operations be done on the same sample to get even more bandwidth?
@SerBallister
@SerBallister 4 роки тому
Because of the low sampling rate that original waveform is being sampled with large gaps, so the phase shift allows you to sample that missing part.
@Mr_ASIC
@Mr_ASIC 4 роки тому
you can but you need expansive ADC , the circuit would be antenna -->LNA->BPF->ADC
@zsbali
@zsbali 3 роки тому
5:35 I don’t understand what you mean on simplify it by removing the high frequency component. Why don’t you simplify it by multiplying by 0? That would be more simple.
@deqortestowy
@deqortestowy 3 роки тому
Very nice presentation but... 5:12: there is a mistake in the first formula. You say: cos(f1)sin(f2) = 1/2*{sin(f1-f2) + sin(f1+f2)} which is wrong. It should be: cos(f1)sin(f2) = 1/2{sin(f2-f1) + sin(f1+f2)}. Second one is OK. Both formula should be presented in this way: cos(f1)sin(f2) = 1/2{sin(f2-f1) + sin(f2-f1)} cos(f1)cos(f2)=1/2{cos(f2-f1) + cos(f2+f1)}
@elnoggernog
@elnoggernog 2 місяці тому
Actually this is not really wrong since a negative frequency in the cos is the same as a cos with the positive frequency. Negative frequencies get "mirrored" up in the spektrum. Its only better to undertand in this case.
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