#!/usr/bin/python # Test pattern substituting for SRF cavity analog state computer # Takes in cavity field, forward, and reverse vector measurements # and emits a test pattern standing in for the cavity detune frequency. # Output of this program should be both valid c99 and valid input # for the scheduler/mapper. # See the rest of the Digaree infrastructure for details. from cgen_lib import cgen_init, given, mul, add, sub, cpx_mul from cgen_lib import cpx_scale from cgen_lib import cpx_mag, set_result, cpx_persist, cpx_add cgen_init("cgen_srf.py") # History of measured cavity voltages, used to compute dV/dt # Initial value in simulation should be settable from initgen? # Cut-and-paste for now, until we at least get the right answer. cpx_persist("sv") # These lines declare the input variables, # first six streamed from the radio given("k_r") # forward given("k_i") # forward given("r_r") # reverse given("r_i") # reverse given("v_r") # cavity given("v_i") # cavity # next eight host-settable given("beta_r") given("beta_i") given("invT") given("two") # needed by 1/x macro given("sclr") given("sclf") given("kick_r") given("kick_i") # Start-up plan: # beta = 1 # kick = 0.1 # (wait) # kick = 0 # (wait) # beta = exp(j*theta) # should then get a sine wave with frequency theta/dT cpx_mul("x1", "sv", "beta", 1, 1) # rotate by theta, beta = exp(j*theta) cpx_add("x2", "x1", "kick", 1) cpx_mag("m1", "x2", 0) sub("m2", "two", "m1", 2) cpx_scale("sv", "x2", "m2", 2) set_result("ab", "sv_r", "sv_i") # Copied from real srf version # Power balance measure of cavity dissipation; uses magnitudes only cpx_mag("magr", "r", 0) # reverse mul("powr", "sclr", "magr", 0) cpx_mag("magf", "k", 0) # forward mul("powf", "sclf", "magf", 0) sub("wgnet", "powf", "powr", 1) # net power transferred by waveguide # Made-up cpx_mag("magv", "v", 0) add("diss", "wgnet", "magv", 0) set_result("cd", "diss", "invT")