read_verilog ../common/fsm.v
hierarchy -top fsm
proc
-#flatten
-#ERROR: Found 4 unproven $equiv cells in 'equiv_status -assert'.
-#equiv_opt -assert -map +/anlogic/cells_sim.v synth_anlogic # equivalency check
-equiv_opt -map +/anlogic/cells_sim.v synth_anlogic # equivalency check
+flatten
+
+equiv_opt -run :prove -map +/anlogic/cells_sim.v synth_anlogic
+miter -equiv -make_assert -flatten gold gate miter
+sat -verify -prove-asserts -show-public -set-at 1 in_reset 1 -seq 20 -prove-skip 1 miter
+
design -load postopt # load the post-opt design (otherwise equiv_opt loads the pre-opt design)
cd fsm # Constrain all select calls below inside the top module
+
select -assert-count 1 t:AL_MAP_LUT2
select -assert-count 5 t:AL_MAP_LUT5
select -assert-count 1 t:AL_MAP_LUT6
hierarchy -top fsm
proc
flatten
-equiv_opt -assert -map +/ecp5/cells_sim.v synth_ecp5 # equivalency check
+
+equiv_opt -run :prove -map +/ecp5/cells_sim.v synth_ecp5
+miter -equiv -make_assert -flatten gold gate miter
+sat -verify -prove-asserts -show-public -set-at 1 in_reset 1 -seq 20 -prove-skip 1 miter
+
design -load postopt # load the post-opt design (otherwise equiv_opt loads the pre-opt design)
cd fsm # Constrain all select calls below inside the top module
+
select -assert-count 1 t:L6MUX21
-select -assert-count 13 t:LUT4
-select -assert-count 5 t:PFUMX
-select -assert-count 5 t:TRELLIS_FF
+select -assert-count 15 t:LUT4
+select -assert-count 6 t:PFUMX
+select -assert-count 6 t:TRELLIS_FF
select -assert-none t:L6MUX21 t:LUT4 t:PFUMX t:TRELLIS_FF %% t:* %D
hierarchy -top fsm
proc
flatten
-#ERROR: Found 4 unproven $equiv cells in 'equiv_status -assert'.
-#equiv_opt -assert -map +/efinix/cells_sim.v synth_efinix # equivalency check
-equiv_opt -map +/efinix/cells_sim.v synth_efinix # equivalency check
+
+equiv_opt -run :prove -map +/efinix/cells_sim.v synth_efinix
+miter -equiv -make_assert -flatten gold gate miter
+sat -verify -prove-asserts -show-public -set-at 1 in_reset 1 -seq 20 -prove-skip 1 miter
+
design -load postopt # load the post-opt design (otherwise equiv_opt loads the pre-opt design)
cd fsm # Constrain all select calls below inside the top module
hierarchy -top fsm
proc
flatten
-equiv_opt -assert -map +/ice40/cells_sim.v synth_ice40 # equivalency check
+
+equiv_opt -run :prove -map +/ice40/cells_sim.v synth_ice40
+miter -equiv -make_assert -flatten gold gate miter
+sat -verify -prove-asserts -show-public -set-at 1 in_reset 1 -seq 20 -prove-skip 1 miter
+
design -load postopt # load the post-opt design (otherwise equiv_opt loads the pre-opt design)
cd fsm # Constrain all select calls below inside the top module
+select -assert-count 4 t:SB_DFF
select -assert-count 2 t:SB_DFFESR
-select -assert-count 2 t:SB_DFFSR
-select -assert-count 1 t:SB_DFFSS
-select -assert-count 13 t:SB_LUT4
-select -assert-none t:SB_DFFESR t:SB_DFFSR t:SB_DFFSS t:SB_LUT4 %% t:* %D
+select -assert-count 15 t:SB_LUT4
+select -assert-none t:SB_DFFESR t:SB_DFF t:SB_LUT4 %% t:* %D
hierarchy -top fsm
proc
flatten
-equiv_opt -assert -map +/xilinx/cells_sim.v synth_xilinx # equivalency check
+
+equiv_opt -run :prove -map +/xilinx/cells_sim.v synth_xilinx
+miter -equiv -make_assert -flatten gold gate miter
+sat -verify -prove-asserts -show-public -set-at 1 in_reset 1 -seq 20 -prove-skip 1 miter
+
design -load postopt # load the post-opt design (otherwise equiv_opt loads the pre-opt design)
cd fsm # Constrain all select calls below inside the top module