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1. GTS Transceiver Overview
2. GTS Transceiver Architecture
3. Implementing the GTS PMA/FEC Direct PHY Intel FPGA IP
4. Implementing the GTS System PLL Clocks Intel FPGA IP
5. Implementing the GTS Reset Sequencer Intel FPGA IP
6. GTS PMA/FEC Direct PHY Intel FPGA IP Example Design
7. Design Assistance Tools
8. Debugging GTS Transceiver Links with Transceiver Toolkit
9. Document Revision History for the GTS Transceiver PHY User Guide
3.1. IP Overview
3.2. Designing with the GTS PMA/FEC Direct PHY Intel FPGA IP
3.3. Configuring the GTS PMA/FEC Direct PHY Intel FPGA IP
3.4. Signal and Port Reference
3.5. Bit Mapping for PMA, FEC, and PCS Mode PHY TX and RX Datapath
3.6. Clocking
3.7. Custom Cadence Generation Ports and Logic
3.8. Asserting reset
3.9. Bonding Implementation
3.10. Configuration Register
3.11. Configuring the GTS PMA/FEC Direct PHY Intel FPGA IP for Hardware Testing
3.12. Configurable Quartus® Prime Software Settings
3.13. Hardware Configuration Using the Avalon® Memory-Mapped Interface
3.3.1. Preset IP Parameter Settings
3.3.2. Common Datapath Options
3.3.3. TX Datapath Options
3.3.4. RX Datapath Options
3.3.5. PMA Configuration Rules for Specific Protocol Mode Implementations
3.3.6. FEC Options
3.3.7. PCS Options
3.3.8. Avalon® Memory-Mapped Interface Options
3.3.9. Register Map IP-XACT Support
3.3.10. Analog Parameter Options
3.4.1. TX and RX Parallel and Serial Interface Signals
3.4.2. TX and RX Reference Clock and Clock Output Interface Signals
3.4.3. Reset Signals
3.4.4. FEC Signals
3.4.5. Custom Cadence Control and Status Signals
3.4.6. RX PMA Status Signals
3.4.7. TX and RX PMA and Core Interface FIFO Signals
3.4.8. Avalon Memory-Mapped Interface Signals
6.1. Instantiating the GTS PMA/FEC Direct PHY Intel FPGA IP
6.2. Generating the GTS PMA/FEC Direct PHY Intel FPGA IP Example Design
6.3. GTS PMA/FEC Direct PHY Intel FPGA IP Example Design Functional Description
6.4. Simulating the GTS PMA/FEC Direct PHY Intel FPGA IP Example Design Testbench
6.5. Compiling the GTS PMA/FEC Direct PHY Intel FPGA IP Example Design
6.6. Hardware Testing the GTS PMA/FEC Direct PHY Intel FPGA IP Example Design
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2.6.5. Shared Clocking Resources Between the GTS Transceiver Bank and HVIO Bank
For a corner GTS transceiver bank, which is located adjacent to the HVIO bank, some clock-to-core resources are shared.
For each transceiver channel, there are four multiplexers that select the clock to be routed to the FPGA core. However, there are more than four possible sources to choose from both the GTS transceiver channel and also the HVIO bank, therefore not all of them can be used at the same time.
Figure 35. Shared Clocking Resources Between the GTS Transceiver Bank and HVIO Bank
Every channel in a GTS transceiver bank has a selection of five output clock options which are routed through these four multiplexers. These five output clocks are:
- tx_clkout
- tx_clkout2
- rx_clkout
- rx_clkout2
- Input reference clock to core
In the adjacent HVIO bank, several sources are also routed through these four multiplexers. They are:
- PLLREFCLK1
- PLLREFCLK2
- SOURCE_SYNC_CLK1
- SOURCE_SYNC_CLK2
Between these HVIO sources, the routing is spread across different channels of the adjacent transceiver bank. The following table lists which channel of the adjacent transceiver bank the HVIO sources are shared with.
HVIO Bank | HVIO Pin | GTS Transceiver Channel Number |
---|---|---|
5A | PLLREFCLK1 | 2 |
5A | PLLREFCLK2 | 2 |
5A | SOURCE_SYNC_CLK1 | 0 |
5A | SOURCE_SYNC_CLK2 | 0 |
5B | PLLREFCLK1 | 3 |
5B | PLLREFCLK2 | 3 |
6A | PLLREFCLK1 | 3 |
6A | PLLREFCLK2 | 3 |
6B | SOURCE_SYNC_CLK1 | 0 |
6B | SOURCE_SYNC_CLK2 | 0 |
6B | PLLREFCLK1 | 2 |
6B | PLLREFCLK2 | 2 |
6C | PLLREFCLK1 | 0 |
6C | PLLREFCLK2 | 0 |
6C | SOURCE_SYNC_CLK1 | 2 |
6C | SOURCE_SYNC_CLK2 | 2 |
6D | SOURCE_SYNC_CLK1 | 3 |
6D | SOURCE_SYNC_CLK2 | 3 |
You must ensure that the combination of output clocks that you use between the GTS transceiver bank and the HVIO bank does not exceed four.