X-On Electronics has gained recognition as a prominent supplier of SKU51 Development Software across the USA, India, Europe, Australia, and various other global locations. SKU51 Development Software are a product manufactured by Zipcores. We provide cost-effective solutions for Development Software, ensuring timely deliveries around the world.

SKU51 Zipcores

SKU51 electronic component of Zipcores
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Part No.SKU51
Manufacturer: Zipcores
Category: Development Software
Description: Development Software Binary FSK Demodulator IP Core
Datasheet: SKU51 Datasheet (PDF)
This product is classified as Large/Heavy, additional shipping charges may apply. A customer service representative may contact you after ordering to confirm exact shipping charges



Price (USD)
1: USD 7327.3847 ea
Line Total: USD 7327.38 
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MOQ: 1  Multiples: 1
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Ship by Thu. 28 Nov to Mon. 02 Dec
MOQ : 1
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We are delighted to provide the SKU51 from our Development Software category, at competitive rates not only in the United States, Australia, and India, but also across Europe and beyond. A long established and extensive electronic component distribution network has enhanced our global reach and dependability, ensuring cost savings through prompt deliveries worldwide. Client satisfaction is at the heart of our business, where every component counts and every customer matters. Our technical service team is ready to assist you. From product selection to after-sales support, we strive to deliver a seamless and satisfying experience. Are you ready to experience the best in electronic component distribution? Contact X-ON Electronics today and discover why X-On are a preferred choice for the SKU51 and other electronic components in the Development Software category and beyond.

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BFSK DEMOD Binary-FSK Demodulator Rev. 1.5 Key Design Features Block Diagram Technology independent IP Core for FPGA and ASIC Supplied as human readable VHDL (or Verilog) source code filter type 32 16-bit signed input data samples I i in LPF Accepts either complex (I/Q) or real input samples 16 mag out Programmable mark / space frequencies q in 16 (optional) MAG Choice of low pass filter responses COMPLEX DIGITAL 16 MIXER Carrier separation ~ symbol rate or greater Q LPF Practical symbol rates of up to 10 Mbits/s fsk val SYMBOL phase inc0 (space freq.) DECODE Baseband or passband operation CMP AND phase inc1 (mark freq.) TIMING 1 RECOVERY Typical FPGA sample rates of up to 200 MHz fsk out I LPF Connects directly to an external ADC 16 16 Applications MAG COMPLEX en DIGITAL MIXER Q Software radio clk LPF Short range telemetry reset filter type SRD and ISM band devices Low cost RF applications for FPGA Figure 1: FSK demodulator architecture Generic Parameters Pin-out Description Generic name Description Type Valid range gain Internal gain setting integer 0: x 1 Pin name I/O Description Active state (compensates for low 1: x 2 clk in Sample clock rising edge amplitude input 2: x 4 signals) 3: x 8 reset in Asynchronous reset low 32 seed Seed for random std logic 0 < seed < 2 en in clock enable high number generator in vector phase inc0 31:0 in Phase increment as an data DDS component unsigned 32-bit number dithering Enable phase boolean TRUE / FALSE (f centre frequency) 0 dithering in DDS phase inc1 31:0 in Phase increment as an data use complex Enable complex or boolean TRUE: unsigned 32-bit number real data samples use both ports (f centre frequency) 1 i in and q in i in 15:0 in Real (In-phase) input data as 16-bit signed FALSE: use port q in 15:0 in Imaginary (Quadrature) data i in only input as 16-bit signed (optional input) filter type Low-pass filter integer 0: min B/W response type 3: max B/W mag out 15:0 out Magnitude of symbols after data compare block as 16-bit sym period Symbol period in integer 0 to 65535 signed sample clocks fsk val out FSK bit valid strobe high sym polarity Swaps symbol polarity boolean TRUE / FALSE i.e. 1 0 fsk out out FSK bit out data 1 Xilinx 7-series used as a benchmark Copyright 2016 www.zipcores.com Download this VHDL Core Page 1 of 5 gain seed dithering use complex sym period sym polarityBFSK DEMOD Binary-FSK Demodulator Rev. 1.5 Low pass I/Q filters General Description The I and Q signal paths are filtered using a pair of low pass IIR filters. In BFSK DEMOD is a precision Binary-FSK Demodulator IP Core based on total, there are four separate filter responses that may be selected using a non-coherent receiver design. The demodulator is fully programmable, the generic parameter filter type. allowing for a varied range of symbol rates and mark/space tone frequencies. Input data samples may be either complex or real for Note that for the best possible results, it is important that the full 16-bit support of either passband or baseband signals. The module allows easy dynamic range of the IIR filters is used. In the case of low amplitude input connectivity to an external ADC with up to 16-bit signed input samples. signals, the generic parameter gain may be adjusted to increase the amplitudes of the I and Q signals out of the DDC. Figure 2 shows the Figure 1 shows the basic architecture in more detail. The mark and space different filter responses available. tone frequencies are generated by a pair of precision local oscillators. Each oscillator is implemented as a DDS with an SFDR of better than 80 dBs and a theoretical SNR of approximately 100 dBs. After mixing, the I and Q signal paths for each tone are filtered to remove components above the mark and space centre frequencies. The characteristics of these filters may be changed depending on the desired FSK signal bandwidth. A power function is used to compute the relative magnitudes of the mark/space tones after filtering. These magnitudes are then compared and passed to the symbol decode and timing recovery circuit. The signal mag out is a 16-bit signed output that allows the user to monitor the magnitude of the output symbols before decode and timing recovery. The demodulated FSK bit-stream appears at the output fsk out. Bits are valid on the rising edge of clk when fsk val is high. Mark and Space centre frequencies The frequencies of the mark and space tones are controlled by the signals phase inc0 and phase inc1. The phase increment may be calculated using the formula: 32 =(F 2 )/ F INC OUT S Where F is the desired oscillator frequency and F is the sampling OUT S frequency. When the desired oscillator frequency is negative (e.g. for baseband operation) then the formula becomes: 32 =((F F )2 )/ F INC S OUT S Note that an integer value for the phase increment must be used. As an example, consider a 100 MHz sample clock with a desired local oscillator frequency of 6.197 MHz. The phase increment would be calculated as 32 (6.197 * 2 ) / 100 = 266159123. The minimum and maximum local oscillator frequencies are given by the following formulas: 32 F = F / 2 , F = F / 2 MIN S MAX S Figure 2: Low-pass filter responses. The -3dB cutoff points are: (a) 0.005, (b) 0.01, (c) 0.02 and (d) 0.03 rads/sample As an example, a 100 MHz sample clock would allow a minimum local oscillator frequency of 0.0233 Hz. Conversely, the maximum frequency the local oscillator can generate is given by the Nyquist-Shannon Filter (a) is characterized by a very narrow bandwidth and a long impulse sampling theorem (Fs/2). response time. Conversely, filter (d) has the widest bandwidth but a shorter impulse response time. The table below outlines the different filter 2 characteristics in more detail . 2 A range of different filter responses are available on request. Please contact Zipcores for more details. Copyright 2016 www.zipcores.com Download this VHDL Core Page 2 of 5

Tariff Desc

8543.70.00 Other machines and apparatus Free
13 Signal processors (graphic equalisers, crossovers etc.) 91 Other Free

9027.10.00 Instruments and apparatus for physical or chemical analysis (eg, polarimeters, refractometers, spectrometers, gas or smoke analysis apparatus); instruments and apparatus for measuring or checking viscosity, porosity, expansion, surface tension or the like; instruments and apparatus for measuring or checking quantities of heat, sound or light (including exposure meters); microtomes Free

9031.80.00 MEASURING OR CHECKING INSTRUMENTS, APPLIANCES AND MACHINES, NOT SPECIFIED OR INCLUDED ELSEWHERE IN THIS CHAPTER; PROFILE PROJECTORS Other instruments, appliances and machines Free

9030.31.00 Oscilloscopes, spectrum analysers and other instruments and apparatus for measuring or checking electrical quantities, excluding meters of 9028; instruments and apparatus for measuring or detecting alpha, beta, gamma, x-ray, cosmic or other ionising radiations.
Other instruments and apparatus, for measuring or checking voltage, current, resistance or power Multimeters without a recording device Free

8473.30.00 Parts and accessories of the machines of 8471 AUTOMATIC DATA PROCESSING MACHINES AND UNITS THEREOF; MAGNETIC OR OPTICAL READERS, MACHINES FOR TRANSCRIBING DATA ONTO DATA MEDIA IN CODED FORM AND MACHINES FOR PROCESSING SUCH DATA, NOT ELSEWHERE SPECIFIED OR INCLUDED:
.Other 71 No Weighing less than 1kg Free

8537 BOARDS, PANELS, CONSOLES, DESKS, CABINETS AND OTHER BASES, EQUIPPED WITH TWO OR MORE APPARATUS OF 8535 OR 8536, FOR ELECTRIC CONTROL OR THE DISTRIBUTION OF ELECTRICITY, INCLUDING THOSE INCORPORATING INSTRUMENTS OR APPARATUS OF CHAPTER 90, AND NUMERICAL CONTROL APPARATUS, OTHER THAN SWITCHING APPARATUS OF 8517:
8538 PARTS SUITABLE FOR USE SOLELY OR PRINCIPALLY WITH THE APPARATUS OF 8535, 8536 OR 8537:
8538.10.10 22 For programmable controllers Free
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