fpga: rfnoc: ctrport_combiner with deterministic latency for PRIORITY=1
The latency through the combiner is static if only one master interface is used and PRIORITY=1 is set. Original-commit: 4e3650c0d7ac9bea3720151fbb23591f187590c7
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@@ -7,20 +7,24 @@
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//
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// Description:
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//
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// This block is an arbiter that merges control-port interfaces. This block is
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// used when you have multiple control-port masters that need to access a
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// single slave. For example, a NoC block with multiple submodules that each
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// This block is an arbiter that merges control-port interfaces. This block is
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// used when you have multiple control-port masters that need to access a
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// single slave. For example, a NoC block with multiple submodules that each
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// need to read and/or write registers outside of themselves.
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//
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// This module combines the control-port requests from multiple masters into a
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// single request for one slave. Simultaneous requests are handled in the order
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// This module combines the control-port requests from multiple masters into a
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// single request for one slave. Simultaneous requests are handled in the order
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// specified by PRIORITY. The responding ACK is routed back to the requester.
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//
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// The module has been designed so that the latency through it is always the
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// same when PRIORITY=1 and there is no contention, so that it can be used in
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// applications where deterministic behavior is desired.
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//
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// Parameters:
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//
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// NUM_MASTERS : The number of control-port masters to connect to a single
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// NUM_MASTERS : The number of control-port masters to connect to a single
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// control-port slave.
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// PRIORITY : Use PRIORITY = 0 for round robin arbitration, PRIORITY = 1
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// PRIORITY : Use PRIORITY = 0 for round robin arbitration, PRIORITY = 1
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// for priority arbitration (lowest number port serviced first).
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//
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@@ -69,6 +73,20 @@ module ctrlport_combiner #(
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// currently being serviced.
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reg req_load_output = 1'b0;
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// Helper function to convert one hot vector to binary index
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// (LSB = index 0)
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function integer one_hot_to_binary(input [NUM_MASTERS-1:0] one_hot_vec);
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integer i, total;
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begin
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total = 0;
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for (i = 0; i <= NUM_MASTERS-1; i = i + 1) begin
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if (one_hot_vec[i]) begin
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total = total + i;
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end
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end
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one_hot_to_binary = total;
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end
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endfunction
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//---------------------------------------------------------------------------
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// Input Registers
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@@ -131,7 +149,20 @@ module ctrlport_combiner #(
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//
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//---------------------------------------------------------------------------
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reg req_active = 0; // Indicates if there's a request being serviced
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reg req_active = 0; // Indicates if there's a request being serviced
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wire [NUM_MASTERS-1:0] next_slave_one_hot; // one hot for next active request
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// (used for PRIORITY = 1)
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generate
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genvar i;
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for (i = 0; i < NUM_MASTERS; i = i+1) begin : gen_next_slave_one_hot
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if (i == 0) begin
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assign next_slave_one_hot[i] = req_valid[i];
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end else begin
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assign next_slave_one_hot[i] = req_valid[i] & ~next_slave_one_hot[i-1];
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end
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end
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endgenerate
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always @(posedge ctrlport_clk) begin
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if (ctrlport_rst) begin
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@@ -146,8 +177,12 @@ module ctrlport_combiner #(
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if (m_ctrlport_resp_ack) begin
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req_active <= 1'b0;
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// Go to the next slave so we don't service the same slave again
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if(PRIORITY == 1 || slave_sel == NUM_MASTERS-1)
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// Go to next slave immediately
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if(PRIORITY == 1)
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slave_sel <= one_hot_to_binary(next_slave_one_hot);
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// Round robin - Go to the next slave so we don't service the same
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// slave again
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else if(slave_sel == NUM_MASTERS-1)
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slave_sel <= 0;
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else
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slave_sel <= slave_sel + 1;
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@@ -159,8 +194,11 @@ module ctrlport_combiner #(
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req_active <= 1'b1;
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req_load_output <= 1'b1;
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end else begin
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// Nothing from this slave, so move to the next slave.
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if (slave_sel == NUM_MASTERS-1)
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// Go to next slave immediately
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if(PRIORITY == 1)
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slave_sel <= one_hot_to_binary(next_slave_one_hot);
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// Round robin - Nothing from this slave, so move to the next slave.
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else if (slave_sel == NUM_MASTERS-1)
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slave_sel <= 0;
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else
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slave_sel <= slave_sel + 1;
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@@ -174,7 +212,7 @@ module ctrlport_combiner #(
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// Output Register
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//---------------------------------------------------------------------------
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//
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// Here we load the active request for a single clock cycle and demultiplex
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// Here we load the active request for a single clock cycle and demultiplex
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// the response back to the requesting master.
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//
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//---------------------------------------------------------------------------
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