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ISM 3: Study Guide

The next-Gen, utility-defined Radio (SDR) Transceiver offers big Advances in Frequency Hopping (FH) | 630-007 PDF Questions and exam Questions

abstract

this article offers an in-depth discussion of the high-level thought of frequency hopping (FH), the design principles of FH enabled in the course of the flexible section locked loop (PLL) architecture of the ADRV9002 SDR transceiver, and its 4 predominant FH facets. These aspects empower users with the FH capabilities to deal with functions similar to hyperlink 16 and fast precise-time provider frequency loading in each single- and twin-channel operation modes. furthermore, the aggregate of FH with multichip synchronization (MCS) and digital predistortion (DPD) makes this SDR transceiver an attractive solution for reaching advanced requirements in today’s advanced communication programs.

Introduction

In contrast to commonplace radio communications, frequency hopping (FH) defines a technique of transmitting radio signals by using abruptly altering its provider frequency1 and turned into first mentioned by using Nikola Tesla in his 1903 U.S. patent, “formula of Signaling.” Later, in 1942, actress Hedy Lamarr and composer George Antheil extra solidified the conception by using a piano roll to trade amongst 88 frequencies to steer clear of interference to the radio handle of torpedoes. over the past hundred years, from the non-actual-time, gradual velocity verbal exchange between fastened command aspects in World struggle I to the true-time, excessive velocity multimedia verbal exchange between aircrafts, ships, and land-primarily based methods, FH has arrived at a brand new period in militia applications. in addition to that, FH has been greatly adopted in many wireless personal verbal exchange networks similar to Bluetooth® own area community (PAN), as well as in client and hobby radio areas, equivalent to walkie-talkies, mannequin vehicles, and drones.

what's Frequency Hopping?

The excessive-level concept of FH is described in determine 1. The total frequency band and time period are divided into two-dimensional grids. At any given time slot, a unique frequency subband is utilized for communique. This brings the benefit of high resistance to slender-band interference and strong means in combating malicious interception and jamming since the randomness of the hopping pattern equivalently adds one more layer of safety that is simply decodable between the transmitter and receiver. in addition, FH alerts can with no trouble share the bandwidth with other generic communications because of the minimal mutual interference, leading to excessive spectrum efficiency. With an accelerated hop cost and a larger set of frequency subbands, the benefits of FH become extra popular, which makes it an exquisite answer for various functions.

Figure 1. High-level concept of frequency hopping.

figure 1. high-stage thought of frequency hopping. The subsequent-era SDR Transceiver

The ADRV9002 is a dual slender-band and wideband SDR transceiver, which offers state-of-the-art RF performance as well as advanced equipment facets comparable to DPD and FH. ADRV9002 operates from 30 MHz to 6 GHz and covers the ultrahigh frequency (UHF) bands; very high frequency (VHF) bands; industrial, scientific, and medical (ISM) bands; and cellular frequency bands in slender-band (kHz) and wideband operation as much as forty MHz. determine 2 depicts a excessive-stage block diagram of ADRV9002. It contains dual transmit and get hold of channels with a collection of advanced digital signal processing algorithms. The PLL constitution highlighted in red is interesting within the feel that instead of getting one dedicated PLL for the receive datapath and one for the transmit datapath as many different transceivers, two RF PLLs are employed in the equipment and both PLLs can optionally source any receiver or transmitter, or both, or neither. this adaptability is basic to guide FH in a number of TDD functions similar to single-channel and twin-channel operations, including transmit-simplest mode (1T/2T), acquire most effective mode (1R/2R), and transmit and receive mode (1T1R/2T2R). each channel diversity and channel multiplexing are supported for the dual-channel operations. additionally, two PLLs will also be operated in a ping pong mode to fulfill the stringent FH timing requirement.

Figure 2. High-level block diagram of the ADRV9002 with flexible PLL design.

figure 2. high-level block diagram of the ADRV9002 with bendy PLL design4 predominant FH elements of the ADRV9002 Very quickly FH with Two PLL Muxing and quickly PLL Retuning

FH is finished by means of retuning the PLL before switching to a distinct frequency. The ADRV9002 offers distinctive FH modes in response to PLL usage.2 each and every time slot in figure 1 stands for a hop body, which is split right into a transition time duration and a dwell time length, as shown in determine three.

Figure 3. Hopping frame structure.

determine 3. Hopping frame structure.

In a slower FH mode with a sufficiently lengthy transition time (stronger than the channel setup time and required PLL tuning time) between frequency adjustments, only 1 PLL is required for a pair of transmit and acquire channels in a TDD operation (PLL retune mode). To obtain quicker FH with a shorter transition time (shorter than the channel setup time and required PLL tuning time), two PLLs are employed within the device (PLL mux mode). the two PLLs coordinate with each other in a ping pong fashion: while one PLL is used for the latest frequency, the different PLL is retuned to the subsequent frequency. This makes very quickly FH viable and will significantly reduce the required transition time between distinct frequency alterations. These two modes are summarized in desk 1.

table 1. ADRV9002 FH Mode in keeping with PLL usage FH Mode Transition Time PLLs for a Pair of Channels PLL Retune Time Allowed PLL Mux <PLL retuning time Two PLLs <Two transitions + one dwellPLL Retune >PLL retuning time One PLL <One transition

As proven in desk 1, the preference of those two modes depends upon the transition time the user defines.

figure 4 extra describes the concept of PLL mux mode. As mentioned prior, each and every time slot stands for a hop body along with a transition time duration and a dwell time duration. whereas one PLL is used during the dwell time, the other PLL has begun tuning from the beginning of the transition time of the equal hop body. it might continue the tuning until the conclusion of the transition length of the subsequent hop frame. for this reason, PLL mux mode is successful provided that the mandatory PLL tuning time is under the summation of one dwell time plus two transition times.

Figure 4. PLL mux mode for fast frequency hopping.

figure 4. PLL mux mode for speedy frequency hopping.

FH with PLL mux mode is critical for military purposes akin to hyperlink sixteen. link sixteen is considered one of the most essential tactical statistics link standards used by way of the North Atlantic Treaty organization (NATO) as a jam-resistant, excessive speed digital data hyperlink operating within the radio frequency band of 960 MHz to 1.215 GHz.three with the aid of safely calibrating the whole hop frequency latitude at the initialization time, the ADRV9002 employs fast PLL retuning mode to meet the stringent timing requirement. PLL retuning time depends on the ADRV9002 PLL reference clock rate. desk 2 suggests the quick PLL retuning time required based on a unique PLL reference clock fee. At a PLL reference clock price of 300 MHz, the quickly PLL retuning time is approximately 15 μs. With a hop body size of 13 μs for hyperlink 16, the 15 μs of PLL retuning time when using PLL mux mode can fulfill the timing requirement if the transition time is better than 2 μs, as proven in desk 1.

desk 2. PLL Retuning Time the use of speedy PLL Retuning Mode PLL Reference Clock (MHz) quickly PLL Retuning Time (μs) 30 ninety one 38.4 seventy seven 50 56 one hundred 27 150 21 2 hundred20 250 17 three hundred15

As described in the thesis paper “performance evaluation of a JTIDS/link 16 class Waveform Transmitted over sluggish, Flat Nakagami Fading Channels in the Presence of Narrowband Interference,”3 link 16 message facts will also be sent as either a single pulse or a double pulse, counting on the packing constitution. the one-pulse constitution contains a 6.4 μs on-time and a 6.6 μs off-time with a total length of 13 μs. The double-pulse constitution incorporates two single pulses that lift the identical data however use distinct carrier frequencies, as proven in figure 5. for this reason, the transition time may be 6.6 μs long (>2 μs), which makes link sixteen FH possible with the ADRV9002.

Figure 5. Standard Link 16 double-pulse structure.

determine 5. normal hyperlink 16 double-pulse constitution.

determine 6 indicates the ADRV9002 transmit output (vigor vs. time and frequency vs. time) with hyperlink sixteen-class hop frames (transmit-most effective FH is used for simplicity). word with the intention to exhibit the minimum transition time attainable by means of the ADRV9002, the test doesn't observe the usual hyperlink 16 pulse constitution in determine 5. The on-time is increased from 6.4 μs to 11 μs and the off-time is decreased from 6.6 μs to 2 μs. A Tektronix RSA306B spectrum analyzer is connected to the transmit output port on the ADRV9002 evaluation board for statement. The upper plot shows the performance of vigour vs. time. It may also be viewed that transmit hopping occurs every 13 μs with a transition time about three μs between consecutive transmit hop frames. The reduce plot indicates the efficiency of frequency vs. time. in this scan, the transmit carrier frequency cycles through four distinct frequencies in a 1 MHz step measurement. As expected, the reduce plot proves that the transmit output is also cycling through 4 distinctive frequencies in a 1 MHz step measurement with good frequency accuracy all through the complete dwell time.

Figure 6. Transmit output for Link 16 Tx frequency hopping.

figure 6. Transmit output for hyperlink 16 Tx frequency hopping.

extra measurements are performed to study the frequency accuracy of the link sixteen FH the usage of extra superior test equipment reminiscent of Keysight E5052B and R&S FSWP. within the example dimension proven in desk three, the transmit service frequency is hopping at 400 MHz, 400.1 MHz, four hundred.2 MHz, and four hundred.three MHz. The transmit enter is built to provide four hundred MHz output for all of the hop frames. The size period is determined at a hundred μs, which comprises seven comprehensive hopping frames. The frequency is measured at each 128 ns time interval. It can also be observed that the PLL is entirely locked in the beginning of the dwell time. The frequency error all over the dwell time is dependent upon the phase noise performance. desk 3 shows the ordinary, optimum, and minimal frequency offset (the absolute change between the output frequency and 400 MHz) efficiency for these consecutive seven hop frames. In most frames, the common frequency error is less than 1 ppm. The effects are additionally discovered repeatable for tens of measurements. be aware that the measurements may vary counting on the device and verify configurations.

desk 3. Frequency Accuracy performance with link sixteen Frequency Hopping Hop body number usual Frequency Error (Hz) Max Frequency Error (Hz) Min Frequency Error (Hz) 1 348 730 forty six 2 424 997 4 three 267 563 20 four 327 892 7 five253 569 2 6 394 903 12 7 253 677 17

The ADRV9002 gives consumer potential to exceptional tune the PLL loop filter bandwidth. The performance shown in table three is carried out when the PLL loop filter bandwidth is configured at 1200 kHz. greater PLL filter bandwidth improves the PLL retuning time, which guarantees the whole lock of PLL before dwell time starts. When opting for the loop filter bandwidth, users may still additionally evaluate the phase noise performance required of their applications.

Static and Dynamic desk Load up to 128 diverse Frequency Entries

The ADRV9002 utilizes a hop desk concept for all modes of FH.2 A hop desk consists of a list of frequencies and other operation parameters for each and every hop frame. A hop table can be static, which means it is loaded during the initialization and not allowed to trade on-the-fly. it could actually also be dynamic, which skill it's loaded whereas performing the hopping; in any such case, the consumer can exchange the desk content material on-the-fly. an analogous concept of ping pong is employed in order that the user can optionally load two diverse tables, each with at the least 1 to a maximum of sixty four entries. while one table is getting used for the latest hop body, the different desk is being loaded to prepare for the next hop frame. each and every entry notifies the ADRV9002 of the configurations for a undeniable hop frame. A hop desk can also be indexed by using either incrementing the index immediately (birth from the primary entry of the primary desk to the remaining entry of the second table after which go returned to the primary entry of the primary table again with two hop tables or loop continually with one hop desk) or getting access to a selected entry at any time indicated via digital GPIOs.

figure 7 indicates hop table A and B, each and every with N entries (1 ≤ N ≤ 64). every entry in the table includes 4 key parameters: hop frequency, intermediate frequency (for receive IF mode best), receive gain index, and transmit attenuation. In a TDD operation, clients should notify the ADRV9002 which channel (either transmit or receive) is enabled for each hop frame through the use of a committed channel setup signal (one for every transmit channel and one for each and every acquire channel). hence, although every entry within the hop table consists of parameters for both acquire and transmit, best the imperative parameters are utilized.

Figure 7. ADRV9002 hop tables content and the indexing method.

figure 7. ADRV9002 hop tables content and the indexing formulation.

earlier than additional discussing the hop table operation in FH, it is worth it to be aware the excessive-stage conversation between the ADRV9002 and the baseband built-in circuit (BBIC).

As proven in figure eight, BBIC acts because the main for FH operation, which units up FH mode, the channel setup signals (Rx1_ENBALE, Rx2_ENABLE, Tx1_ENABLE, and Tx2_ENABLE), the HOP alerts (HOP1 and HOP2), and the static or dynamic hop tables (hop frequency, acquire IF frequency, receive benefit, and transmit attenuation). BBIC communicates with the ADRV9002 through an SPI interface or DGPIOs. The ADRV9002 acts because the node for FH by using accepting the alerts from BBIC and then configures the datapath and LOs as a consequence.

Figure 8. A high-level block diagram of communication between the ADRV9002 and BBIC during frequency hopping.

determine 8. A high-stage block diagram of communication between the ADRV9002 and BBIC during frequency hopping.

An example of a dynamic table loading with only one frequency per hop table A and B is described in figure 9. here is an severe case that permits users to change the hop frequency every frame on-the-fly. PLL mux mode is utilized in this illustration. As proven in determine 8, both the rising and falling fringe of the hop signal define the timing boundaries of a hop frame, each consisting of a transition time and a dwell time as outlined previous. The channel setup sign rising edge defines the class of hop body that follows a one body delay (this delay is crucial for PLL mux mode).

Figure 9. An example of dynamic table loading with one frequency per table using PLL mux mode.

determine 9. An illustration of dynamic table loading with one frequency per desk the use of PLL mux mode.

note that the channel setup sign might stand for both the transmit setup signal or get hold of setup sign. figure 9 shows a simplified version of the signal. because TDD operation comprises both transmit and acquire, clients deserve to configure each the transmit setup sign and obtain setup sign separately. moreover indicating the hop frame type, the channel setup signal can even be used to set off the loading of a hop table initiated with the aid of the BBIC. The hop desk loading may still be accomplished earlier than the hopping signal facet after the channel setup sign falling part, and then PLL begins tuning to this frequency on the equal hop edge and becomes in a position for the subsequent hop frame signaled by the next hop aspect. table A and desk B function in a ping pong mode so that, after loading is complete, FH operates on the frequency of 1 table while the frequency of the different desk is being tuned.

figure 10 items the transmit frequency vs. time output with dynamic table loading for 4 entries per load and eight entries per load. The transmit input has 4 frames at 0 kHz, –one hundred kHz, –200 kHz, and –300 kHz frequency, and it is fed to the ADRV9002 by looping the frames at all times. it is also totally aligned and synchronized with hop frames so that the 0 kHz input body aligns with three.1 GHz LO. throughout FH, when LO changes to the subsequent frequency, the transmit enter frequency additionally changes to the next frequency.

Figure 10. A comparison of dynamic table loading with four entries per loading and eight entries per loading.

figure 10. A evaluation of dynamic table loading with 4 entries per loading and eight entries per loading.

table A and desk B are dynamically loaded whereas performing FH (for simplicity and easy commentary, the table content does not alternate from load to load). For four entries per load, we are expecting to see 4 consecutive transmit output frames at three.1 GHz after which 4 consecutive frames at three.1004 GHz, and the equal pattern repeats time and again. For eight entries per load, we expect to look four consecutive transmit output frames at 3.1 GHz, 4 consecutive frames at three.1004 GHz, four consecutive frames at three.1008 Hz, and 4 consecutive frames at 3.1012 GHz, and the identical pattern repeats many times. The transmit output proven in figure eight proves that the dynamic desk loading works as expected.

Channel variety vs. Channel Multiplexing the use of dual Channels

As shown in figure 2, the ADRV9002 supports twin transmit and acquire channels. FH will also be applied on both channels to achieve both channel diversity or channel multiplexing.

For range, each channels are hopping concurrently through the use of the same PLL (either one or two), and the identical hop tables and TDD timing configurations. The MCS skill supplied by way of the ADRV9002 may be enabled to ensure that dissimilar channels on the identical or distinct ADRV9002 contraptions are wholly synchronized with every other with deterministic latency. section synchronization can also be finished via MCS, which is performed each and every time PLL retunes frequency. With MCS, distinct channels may achieve synchronicity even all the way through FH, making the ADRV9002 solution for MIMO range purposes involving FH. greater special descriptions involving the requirements and limitations of the use of MCS all the way through FH will also be found in the ADRV9001 device development consumer e book.2

For channel multiplexing, each and every pair of channels uses one PLL and performs FH independently from every different. One difficulty is that the very speedy FH, which requires two PLLs for a pair of transmit and receive channels, can’t be utilized for channel multiplexing with one ADRV9002 device.

anyway 2T2R mode, it is price mentioning that the ADRV9002 additionally supports 1T2R and 2T1R operations for FH, which offers greater flexibility to meet clients’ certain requirements.

help of FH with DPD Operation

The ADRV9002 also supports DPD operation for each slim-band and wideband purposes. It corrects the nonlinearity of the power amplifier (PA) to greatly enrich PA effectivity whereas achieving general compliant adjacent channel energy leakage ratio (ACPR) performance.

One advanced function of the ADRV9002 is that DPD can be carried out along side FH. In this type of case, the ADRV9002 allows for clients to configure as much as eight frequency areas, and the DPD algorithm creates an premier solution for each frequency area. A DPD solution as a set of coefficients can also be kept and loaded at the conclusion and the starting of a transmission, respectively, for each location. This ensures PA linearity for the entire hop frequency range.

considering that DPD is an adaptive filtering method that ought to trap a collection of samples periodically for coefficient computation, the hopping body length needs to be sufficiently lengthy to satisfy the DPD capture length requirement. however, in situations when users simplest make the most of the at first loaded DPD coefficients with out the want for DPD updates, this limit can also be removed.

ADRV9002 tracking calibrations are constantly now not performed all over speedy FH. youngsters, the initial calibrations are carried out in keeping with numerous frequency regions in line with clients’ FH configurations to achieve the absolute best efficiency.

FH performance assessment the usage of ADRV9002 Transceiver evaluation software (TES)

FH efficiency can also be evaluated fully throughout the ADRV9002 TES with the assessment board. both the Xilinx® ZC706 and ZCU102 FPGA boards are supported by TES.2 As shown in determine 11, the FH configuration pages are handy to use to configure FH parameters, including FH operation mode, the hopping tables, the GPIO atmosphere, the TDD timing, and so on. FPGA synchronization features are developed into the TES to permit users to precisely control the TDD timing in order that the transmit or receive frames can also be totally synchronized with hop frames. Many FH examples are also supplied in TES for clients to additional explore.

Figure 11. Configure FH through TES.

figure eleven. Configure FH through TES. Conclusion

FH is likely one of the advanced system points supplied by using the next-technology SDR transceiver, the ADRV9002. With two PLLs, distinct FH modes, and flexibility in loading and indexing hop tables, the ADRV9002 empowers clients with awesome FH capabilities to address numerous purposes and obtain superior gadget necessities. All features can also be totally evaluated in the course of the ADRV9002 TES and application construction package (SDK).

参考电路

1 John G. Proakis. Digital Communications, third version. McGraw-Hill, March 1994.

2 UG-1828: ADRV9001 device building consumer ebook. Analog instruments, Inc., December 2020.

3 Kao Chin-Han. “efficiency analysis of a JTIDS/hyperlink-sixteen-classification Waveform Transmitted over sluggish, Flat Nakagami Fading Channels within the Presence of Narrowband Interference Narrowband Interference.” Naval Postgraduate college, 2008.




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