110448Snilay@cs.wisc.edu/* Copyright (c) 2012 Massachusetts Institute of Technology
210448Snilay@cs.wisc.edu *
310448Snilay@cs.wisc.edu * Permission is hereby granted, free of charge, to any person obtaining a copy
410448Snilay@cs.wisc.edu * of this software and associated documentation files (the "Software"), to deal
510448Snilay@cs.wisc.edu * in the Software without restriction, including without limitation the rights
610448Snilay@cs.wisc.edu * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
710448Snilay@cs.wisc.edu * copies of the Software, and to permit persons to whom the Software is
810448Snilay@cs.wisc.edu * furnished to do so, subject to the following conditions:
910448Snilay@cs.wisc.edu *
1010448Snilay@cs.wisc.edu * The above copyright notice and this permission notice shall be included in
1110448Snilay@cs.wisc.edu * all copies or substantial portions of the Software.
1210448Snilay@cs.wisc.edu *
1310448Snilay@cs.wisc.edu * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
1410448Snilay@cs.wisc.edu * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
1510448Snilay@cs.wisc.edu * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
1610448Snilay@cs.wisc.edu * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
1710448Snilay@cs.wisc.edu * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
1810448Snilay@cs.wisc.edu * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
1910448Snilay@cs.wisc.edu * THE SOFTWARE.
2010448Snilay@cs.wisc.edu */
2110448Snilay@cs.wisc.edu
2210447Snilay@cs.wisc.edu#include "model/optical/OpticalLinkBackendRx.h"
2310447Snilay@cs.wisc.edu
2410447Snilay@cs.wisc.edu#include "util/Constants.h"
2510447Snilay@cs.wisc.edu#include "model/PortInfo.h"
2610447Snilay@cs.wisc.edu#include "model/TransitionInfo.h"
2710447Snilay@cs.wisc.edu#include "model/EventInfo.h"
2810447Snilay@cs.wisc.edu#include "model/electrical/DemuxTreeDeserializer.h"
2910447Snilay@cs.wisc.edu#include "model/electrical/BarrelShifter.h"
3010447Snilay@cs.wisc.edu#include "model/electrical/Multiplexer.h"
3110447Snilay@cs.wisc.edu#include <cmath>
3210447Snilay@cs.wisc.edu
3310447Snilay@cs.wisc.edunamespace DSENT
3410447Snilay@cs.wisc.edu{
3510447Snilay@cs.wisc.edu    // TODO: Kind of don't like the way thermal tuning is written here. Maybe will switch
3610447Snilay@cs.wisc.edu    // to curve fitting the CICC paper, which uses results from a monte-carlo sim. Also, there is
3710447Snilay@cs.wisc.edu    // redundant code between this one and the tx one...
3810447Snilay@cs.wisc.edu
3910447Snilay@cs.wisc.edu    OpticalLinkBackendRx::OpticalLinkBackendRx(const String& instance_name_, const TechModel* tech_model_)
4010447Snilay@cs.wisc.edu        : ElectricalModel(instance_name_, tech_model_)
4110447Snilay@cs.wisc.edu    {
4210447Snilay@cs.wisc.edu        initParameters();
4310447Snilay@cs.wisc.edu        initProperties();
4410447Snilay@cs.wisc.edu    }
4510447Snilay@cs.wisc.edu
4610447Snilay@cs.wisc.edu    OpticalLinkBackendRx::~OpticalLinkBackendRx()
4710447Snilay@cs.wisc.edu    {}
4810447Snilay@cs.wisc.edu
4910447Snilay@cs.wisc.edu    void OpticalLinkBackendRx::initParameters()
5010447Snilay@cs.wisc.edu    {
5110447Snilay@cs.wisc.edu        addParameterName("OutBits");
5210447Snilay@cs.wisc.edu        addParameterName("CoreDataRate");
5310447Snilay@cs.wisc.edu        addParameterName("LinkDataRate");
5410447Snilay@cs.wisc.edu        addParameterName("RingTuningMethod");
5510447Snilay@cs.wisc.edu        addParameterName("BitDuplicate");
5610447Snilay@cs.wisc.edu        return;
5710447Snilay@cs.wisc.edu    }
5810447Snilay@cs.wisc.edu
5910447Snilay@cs.wisc.edu    void OpticalLinkBackendRx::initProperties()
6010447Snilay@cs.wisc.edu    {
6110447Snilay@cs.wisc.edu        return;
6210447Snilay@cs.wisc.edu    }
6310447Snilay@cs.wisc.edu
6410447Snilay@cs.wisc.edu    void OpticalLinkBackendRx::constructModel()
6510447Snilay@cs.wisc.edu    {
6610447Snilay@cs.wisc.edu        unsigned int out_bits = getParameter("OutBits");
6710447Snilay@cs.wisc.edu        double core_data_rate = getParameter("CoreDataRate");
6810447Snilay@cs.wisc.edu        double link_data_rate = getParameter("LinkDataRate");
6910447Snilay@cs.wisc.edu        const String& tuning_method = getParameter("RingTuningMethod");
7010447Snilay@cs.wisc.edu        bool bit_duplicate = getParameter("BitDuplicate");
7110447Snilay@cs.wisc.edu
7210447Snilay@cs.wisc.edu        // Calculate deserialization ratio
7310447Snilay@cs.wisc.edu        unsigned int deserialization_ratio = (unsigned int) floor(link_data_rate / core_data_rate);
7410447Snilay@cs.wisc.edu        ASSERT(deserialization_ratio == link_data_rate / core_data_rate,
7510447Snilay@cs.wisc.edu            "[Error] " + getInstanceName() + " -> Cannot have non-integer deserialization ratios!");
7610447Snilay@cs.wisc.edu        ASSERT((deserialization_ratio & (deserialization_ratio - 1)) == 0,
7710447Snilay@cs.wisc.edu            "[Error] " + getInstanceName() + " -> Deserialization ratio must be a power of 2");
7810447Snilay@cs.wisc.edu
7910447Snilay@cs.wisc.edu        // Calculate output width
8010447Snilay@cs.wisc.edu        unsigned int in_bits = out_bits / deserialization_ratio;
8110447Snilay@cs.wisc.edu        ASSERT(out_bits >= deserialization_ratio, "[Error] " + getInstanceName() +
8210447Snilay@cs.wisc.edu            " -> Output width must be >= deserialization ratio!");
8310447Snilay@cs.wisc.edu        ASSERT(floor((double) out_bits / deserialization_ratio) == in_bits,
8410447Snilay@cs.wisc.edu            "[Error] " + getInstanceName() + " -> Output width must be a multiple of the serialization ratio!");
8510447Snilay@cs.wisc.edu
8610447Snilay@cs.wisc.edu        getGenProperties()->set("DeserializationRatio", deserialization_ratio);
8710447Snilay@cs.wisc.edu        getGenProperties()->set("InBits", in_bits);
8810447Snilay@cs.wisc.edu
8910447Snilay@cs.wisc.edu        // Create ports
9010447Snilay@cs.wisc.edu        createInputPort("In", makeNetIndex(0, in_bits-1));
9110447Snilay@cs.wisc.edu        createInputPort("LinkCK");
9210447Snilay@cs.wisc.edu        createOutputPort("Out", makeNetIndex(0, out_bits-1));
9310447Snilay@cs.wisc.edu
9410447Snilay@cs.wisc.edu        //Create energy, power, and area results
9510447Snilay@cs.wisc.edu        createElectricalResults();
9610447Snilay@cs.wisc.edu        // Create ring heating power cost
9710447Snilay@cs.wisc.edu        addNddPowerResult(new AtomicResult("RingTuning"));
9810447Snilay@cs.wisc.edu        // Create process bits event
9910447Snilay@cs.wisc.edu        createElectricalEventResult("ProcessBits");
10010447Snilay@cs.wisc.edu        getEventInfo("ProcessBits")->setTransitionInfo("LinkCK", TransitionInfo(0.0, (double) deserialization_ratio / 2.0, 0.0));
10110447Snilay@cs.wisc.edu        // Set conditions during idle state
10210447Snilay@cs.wisc.edu        getEventInfo("Idle")->setStaticTransitionInfos();
10310447Snilay@cs.wisc.edu        getEventInfo("Idle")->setTransitionInfo("LinkCK", TransitionInfo(0.0, (double) deserialization_ratio / 2.0, 0.0));
10410447Snilay@cs.wisc.edu
10510447Snilay@cs.wisc.edu        // Create deserializer
10610447Snilay@cs.wisc.edu        const String& deserializer_name = "Deserializer";
10710447Snilay@cs.wisc.edu        DemuxTreeDeserializer* deserializer = new DemuxTreeDeserializer(deserializer_name, getTechModel());
10810447Snilay@cs.wisc.edu        deserializer->setParameter("OutBits", out_bits);
10910447Snilay@cs.wisc.edu        deserializer->setParameter("InDataRate", link_data_rate);
11010447Snilay@cs.wisc.edu        deserializer->setParameter("OutDataRate", core_data_rate);
11110447Snilay@cs.wisc.edu        deserializer->setParameter("BitDuplicate", bit_duplicate);
11210447Snilay@cs.wisc.edu        deserializer->construct();
11310447Snilay@cs.wisc.edu
11410447Snilay@cs.wisc.edu        addSubInstances(deserializer, 1.0);
11510447Snilay@cs.wisc.edu        addElectricalSubResults(deserializer, 1.0);
11610447Snilay@cs.wisc.edu        getEventResult("ProcessBits")->addSubResult(deserializer->getEventResult("Deserialize"), deserializer_name, 1.0);
11710447Snilay@cs.wisc.edu
11810447Snilay@cs.wisc.edu        if ((tuning_method == "ThermalWithBitReshuffle") || (tuning_method == "ElectricalAssistWithBitReshuffle"))
11910447Snilay@cs.wisc.edu        {
12010447Snilay@cs.wisc.edu            // If a bit reshuffling backend is present, create the reshuffling backend
12110447Snilay@cs.wisc.edu            unsigned int reorder_degree = getBitReorderDegree();
12210447Snilay@cs.wisc.edu
12310447Snilay@cs.wisc.edu            // Create intermediate nets
12410447Snilay@cs.wisc.edu            createNet("ReorderIn", makeNetIndex(0, in_bits+reorder_degree-1));
12510447Snilay@cs.wisc.edu            assign("ReorderIn", makeNetIndex(0, in_bits-1), "In");
12610447Snilay@cs.wisc.edu            assign("ReorderIn", makeNetIndex(in_bits, in_bits+reorder_degree-1), "ReorderIn", makeNetIndex(0, reorder_degree-1));
12710447Snilay@cs.wisc.edu            createNet("DeserializerIn", makeNetIndex(0, in_bits-1));
12810447Snilay@cs.wisc.edu            createNet("BarrelShiftIn", makeNetIndex(0, out_bits-1));
12910447Snilay@cs.wisc.edu
13010447Snilay@cs.wisc.edu            // Create bit reorder muxes
13110447Snilay@cs.wisc.edu            const String& reorder_mux_name = "ReorderMux";
13210447Snilay@cs.wisc.edu            Multiplexer* reorder_mux = new Multiplexer(reorder_mux_name, getTechModel());
13310447Snilay@cs.wisc.edu            reorder_mux->setParameter("NumberBits", in_bits);
13410447Snilay@cs.wisc.edu            reorder_mux->setParameter("NumberInputs", reorder_degree);
13510447Snilay@cs.wisc.edu            reorder_mux->setParameter("BitDuplicate", bit_duplicate);
13610447Snilay@cs.wisc.edu            reorder_mux->construct();
13710447Snilay@cs.wisc.edu
13810447Snilay@cs.wisc.edu            // Create barrelshifter
13910447Snilay@cs.wisc.edu            unsigned int shift_index_min = (unsigned int)ceil(log2(deserialization_ratio));
14010447Snilay@cs.wisc.edu            unsigned int shift_index_max = std::max(shift_index_min, (unsigned int) ceil(log2(out_bits)) - 1);
14110447Snilay@cs.wisc.edu
14210447Snilay@cs.wisc.edu            // Remember some things
14310447Snilay@cs.wisc.edu            getGenProperties()->set("ReorderDegree", reorder_degree);
14410447Snilay@cs.wisc.edu            getGenProperties()->set("ShiftIndexMin", shift_index_min);
14510447Snilay@cs.wisc.edu            getGenProperties()->set("ShiftIndexMax", shift_index_max);
14610447Snilay@cs.wisc.edu
14710447Snilay@cs.wisc.edu            const String& barrel_shift_name = "BarrelShifter";
14810447Snilay@cs.wisc.edu            BarrelShifter* barrel_shift = new BarrelShifter(barrel_shift_name, getTechModel());
14910447Snilay@cs.wisc.edu            barrel_shift->setParameter("NumberBits", out_bits);
15010447Snilay@cs.wisc.edu            barrel_shift->setParameter("ShiftIndexMax", shift_index_max);
15110447Snilay@cs.wisc.edu            barrel_shift->setParameter("ShiftIndexMin", shift_index_min);
15210447Snilay@cs.wisc.edu            barrel_shift->setParameter("BitDuplicate", bit_duplicate);
15310447Snilay@cs.wisc.edu            barrel_shift->construct();
15410447Snilay@cs.wisc.edu
15510447Snilay@cs.wisc.edu            // Connect serializer
15610447Snilay@cs.wisc.edu            portConnect(deserializer, "In", "DeserializerIn");
15710447Snilay@cs.wisc.edu            portConnect(deserializer, "Out", "BarrelShiftIn");
15810447Snilay@cs.wisc.edu            portConnect(deserializer, "InCK", "LinkCK");
15910447Snilay@cs.wisc.edu
16010447Snilay@cs.wisc.edu            // Connect barrelshifter
16110447Snilay@cs.wisc.edu            // TODO: Connect barrelshift shifts!
16210447Snilay@cs.wisc.edu            portConnect(barrel_shift, "In", "BarrelShiftIn");
16310447Snilay@cs.wisc.edu            portConnect(barrel_shift, "Out", "Out");
16410447Snilay@cs.wisc.edu
16510447Snilay@cs.wisc.edu            // Connect bit reorder muxes
16610447Snilay@cs.wisc.edu            // TODO: Connect re-order multiplex select signals!
16710447Snilay@cs.wisc.edu            for (unsigned int i = 0; i < reorder_degree; i++)
16810447Snilay@cs.wisc.edu                portConnect(reorder_mux, "In" + (String) i, "ReorderIn", makeNetIndex(i, i+in_bits-1));
16910447Snilay@cs.wisc.edu            portConnect(reorder_mux, "Out", "DeserializerIn");
17010447Snilay@cs.wisc.edu
17110447Snilay@cs.wisc.edu            addSubInstances(barrel_shift, 1.0);
17210447Snilay@cs.wisc.edu            addSubInstances(reorder_mux, 1.0);
17310447Snilay@cs.wisc.edu            addElectricalSubResults(barrel_shift, 1.0);
17410447Snilay@cs.wisc.edu            addElectricalSubResults(reorder_mux, 1.0);
17510447Snilay@cs.wisc.edu            getEventResult("ProcessBits")->addSubResult(barrel_shift->getEventResult("BarrelShift"), barrel_shift_name, 1.0);
17610447Snilay@cs.wisc.edu            getEventResult("ProcessBits")->addSubResult(reorder_mux->getEventResult("Mux"), reorder_mux_name, 1.0);
17710447Snilay@cs.wisc.edu        }
17810447Snilay@cs.wisc.edu        else if ((tuning_method == "FullThermal") || (tuning_method == "AthermalWithTrim"))
17910447Snilay@cs.wisc.edu        {
18010447Snilay@cs.wisc.edu            // If no bit reshuffling backend is present, then just connect deserializer up
18110447Snilay@cs.wisc.edu            portConnect(deserializer, "In", "In");
18210447Snilay@cs.wisc.edu            portConnect(deserializer, "Out", "Out");
18310447Snilay@cs.wisc.edu            portConnect(deserializer, "InCK", "LinkCK");
18410447Snilay@cs.wisc.edu        }
18510447Snilay@cs.wisc.edu        else
18610447Snilay@cs.wisc.edu        {
18710447Snilay@cs.wisc.edu            ASSERT(false, "[Error] " + getInstanceName() + " -> Unknown ring tuning method '" + tuning_method + "'!");
18810447Snilay@cs.wisc.edu        }
18910447Snilay@cs.wisc.edu
19010447Snilay@cs.wisc.edu        return;
19110447Snilay@cs.wisc.edu    }
19210447Snilay@cs.wisc.edu
19310447Snilay@cs.wisc.edu    void OpticalLinkBackendRx::updateModel()
19410447Snilay@cs.wisc.edu    {
19510447Snilay@cs.wisc.edu        // Update everyone
19610447Snilay@cs.wisc.edu        Model::updateModel();
19710447Snilay@cs.wisc.edu        // Update ring tuning power
19810447Snilay@cs.wisc.edu        getNddPowerResult("RingTuning")->setValue(getRingTuningPower());
19910447Snilay@cs.wisc.edu        return;
20010447Snilay@cs.wisc.edu    }
20110447Snilay@cs.wisc.edu
20210447Snilay@cs.wisc.edu    void OpticalLinkBackendRx::propagateTransitionInfo()
20310447Snilay@cs.wisc.edu    {
20410447Snilay@cs.wisc.edu        // Get parameters
20510447Snilay@cs.wisc.edu        const String& tuning_method = getParameter("RingTuningMethod");;
20610447Snilay@cs.wisc.edu
20710447Snilay@cs.wisc.edu        // Get properties
20810447Snilay@cs.wisc.edu
20910447Snilay@cs.wisc.edu        // Update the deserializer
21010447Snilay@cs.wisc.edu        if ((tuning_method == "ThermalWithBitReshuffle") || (tuning_method == "ElectricalAssistWithBitReshuffle"))
21110447Snilay@cs.wisc.edu        {
21210447Snilay@cs.wisc.edu            // Get generated properties
21310447Snilay@cs.wisc.edu            unsigned int reorder_degree = getGenProperties()->get("ReorderDegree");
21410447Snilay@cs.wisc.edu            unsigned int shift_index_min = getGenProperties()->get("ShiftIndexMin");
21510447Snilay@cs.wisc.edu            unsigned int shift_index_max = getGenProperties()->get("ShiftIndexMax");
21610447Snilay@cs.wisc.edu
21710447Snilay@cs.wisc.edu            // Reorder mux shift select bits
21810447Snilay@cs.wisc.edu            unsigned int reorder_sel_bits = (unsigned int)ceil(log2(reorder_degree));
21910447Snilay@cs.wisc.edu
22010447Snilay@cs.wisc.edu            // Create bit reorder muxes
22110447Snilay@cs.wisc.edu            const String& reorder_mux_name = "ReorderMux";
22210447Snilay@cs.wisc.edu            ElectricalModel* reorder_mux = (ElectricalModel*) getSubInstance(reorder_mux_name);
22310447Snilay@cs.wisc.edu            for (unsigned int i = 0; i < reorder_degree; ++i)
22410447Snilay@cs.wisc.edu                propagatePortTransitionInfo(reorder_mux, "In" + (String) i, "In");
22510447Snilay@cs.wisc.edu            // Set select transitions to be 0, since these are statically configured
22610447Snilay@cs.wisc.edu            for (unsigned int i = 0; i < reorder_sel_bits; ++i)
22710447Snilay@cs.wisc.edu                reorder_mux->getInputPort("Sel" + (String) i)->setTransitionInfo(TransitionInfo(0.5, 0.0, 0.5));
22810447Snilay@cs.wisc.edu            reorder_mux->use();
22910447Snilay@cs.wisc.edu
23010447Snilay@cs.wisc.edu            // Update the deserializer
23110447Snilay@cs.wisc.edu            ElectricalModel* deserializer = (ElectricalModel*) getSubInstance("Deserializer");
23210447Snilay@cs.wisc.edu            propagatePortTransitionInfo(deserializer, "In", reorder_mux, "Out");
23310447Snilay@cs.wisc.edu            propagatePortTransitionInfo(deserializer, "InCK", "LinkCK");
23410447Snilay@cs.wisc.edu            deserializer->use();
23510447Snilay@cs.wisc.edu
23610447Snilay@cs.wisc.edu            // Update barrel shifter
23710447Snilay@cs.wisc.edu            const String& barrel_shift_name = "BarrelShifter";
23810447Snilay@cs.wisc.edu            ElectricalModel* barrel_shift = (ElectricalModel*) getSubInstance(barrel_shift_name);
23910447Snilay@cs.wisc.edu            propagatePortTransitionInfo(barrel_shift, "In", deserializer, "Out");
24010447Snilay@cs.wisc.edu            // Set shift transitions to be very low (since it is affected by slow temperature time constants)
24110447Snilay@cs.wisc.edu            for (unsigned int i = shift_index_min; i <= shift_index_max; ++i)
24210447Snilay@cs.wisc.edu                barrel_shift->getInputPort("Shift" + (String) i)->setTransitionInfo(TransitionInfo(0.499, 0.001, 0.499));
24310447Snilay@cs.wisc.edu            barrel_shift->use();
24410447Snilay@cs.wisc.edu
24510447Snilay@cs.wisc.edu            // Set output transition info
24610447Snilay@cs.wisc.edu            propagatePortTransitionInfo("Out", barrel_shift, "Out");
24710447Snilay@cs.wisc.edu        }
24810447Snilay@cs.wisc.edu        else if ((tuning_method == "FullThermal") || (tuning_method == "AthermalWithTrim"))
24910447Snilay@cs.wisc.edu        {
25010447Snilay@cs.wisc.edu            // Update the deserializer
25110447Snilay@cs.wisc.edu            ElectricalModel* deserializer = (ElectricalModel*) getSubInstance("Deserializer");
25210447Snilay@cs.wisc.edu            propagatePortTransitionInfo(deserializer, "In", "In");
25310447Snilay@cs.wisc.edu            propagatePortTransitionInfo(deserializer, "InCK", "LinkCK");
25410447Snilay@cs.wisc.edu            deserializer->use();
25510447Snilay@cs.wisc.edu
25610447Snilay@cs.wisc.edu            // Set output transition info
25710447Snilay@cs.wisc.edu            propagatePortTransitionInfo("Out", deserializer, "Out");
25810447Snilay@cs.wisc.edu        }
25910447Snilay@cs.wisc.edu        else
26010447Snilay@cs.wisc.edu        {
26110447Snilay@cs.wisc.edu            ASSERT(false, "[Error] " + getInstanceName() + " -> Unknown ring tuning method '" + tuning_method + "'!");
26210447Snilay@cs.wisc.edu        }
26310447Snilay@cs.wisc.edu
26410447Snilay@cs.wisc.edu        return;
26510447Snilay@cs.wisc.edu    }
26610447Snilay@cs.wisc.edu
26710447Snilay@cs.wisc.edu    double OpticalLinkBackendRx::getRingTuningPower()
26810447Snilay@cs.wisc.edu    {
26910447Snilay@cs.wisc.edu        // Get properties
27010447Snilay@cs.wisc.edu        const String& tuning_method = getParameter("RingTuningMethod");;
27110447Snilay@cs.wisc.edu        unsigned int number_rings = getGenProperties()->get("InBits");
27210447Snilay@cs.wisc.edu
27310447Snilay@cs.wisc.edu        // Get tech model parameters
27410447Snilay@cs.wisc.edu        double R = getTechModel()->get("Ring->Radius");
27510447Snilay@cs.wisc.edu        double n_g = getTechModel()->get("Ring->GroupIndex");
27610447Snilay@cs.wisc.edu        double heating_efficiency = getTechModel()->get("Ring->HeatingEfficiency");
27710447Snilay@cs.wisc.edu        // This can actually be derived if we know thermo-optic coefficient (delta n / delta T)
27810447Snilay@cs.wisc.edu        double tuning_efficiency = getTechModel()->get("Ring->TuningEfficiency");
27910447Snilay@cs.wisc.edu        double sigma_r_local = getTechModel()->get("Ring->LocalVariationSigma");
28010447Snilay@cs.wisc.edu        double sigma_r_systematic = getTechModel()->get("Ring->SystematicVariationSigma");
28110447Snilay@cs.wisc.edu        double T_max = getTechModel()->get("Ring->TemperatureMax");
28210447Snilay@cs.wisc.edu        double T_min = getTechModel()->get("Ring->TemperatureMin");
28310447Snilay@cs.wisc.edu        double T = getTechModel()->get("Temperature");
28410447Snilay@cs.wisc.edu
28510447Snilay@cs.wisc.edu        // Get constants
28610447Snilay@cs.wisc.edu        double c = Constants::c;
28710447Snilay@cs.wisc.edu        double pi = Constants::pi;
28810447Snilay@cs.wisc.edu
28910447Snilay@cs.wisc.edu        double tuning_power = 0.0;
29010447Snilay@cs.wisc.edu
29110447Snilay@cs.wisc.edu        if (tuning_method == "ThermalWithBitReshuffle")
29210447Snilay@cs.wisc.edu        {
29310447Snilay@cs.wisc.edu            // When an electrical backend is present, rings only have to tune to the nearest channel
29410447Snilay@cs.wisc.edu            // This can be approximated as each ring tuning to something exactly 1 channel away
29510447Snilay@cs.wisc.edu
29610447Snilay@cs.wisc.edu            // Setup calculations
29710447Snilay@cs.wisc.edu            double L = 2 * pi * R;                  // Optical length
29810447Snilay@cs.wisc.edu            double FSR = c / (n_g * L);             // Free spectral range
29910447Snilay@cs.wisc.edu            double freq_sep = FSR / number_rings;   // Channel separation
30010447Snilay@cs.wisc.edu
30110447Snilay@cs.wisc.edu            // Calculate tuning power
30210447Snilay@cs.wisc.edu            tuning_power = number_rings * freq_sep / (tuning_efficiency * heating_efficiency);
30310447Snilay@cs.wisc.edu        }
30410447Snilay@cs.wisc.edu        else if (tuning_method == "ElectricalAssistWithBitReshuffle")
30510447Snilay@cs.wisc.edu        {
30610447Snilay@cs.wisc.edu            // Electrical assistance allows for a fraction of the tuning range to be
30710447Snilay@cs.wisc.edu            // covered electrically. This is most pronounced when the tuning range is small,
30810447Snilay@cs.wisc.edu            // such is the case when bit reshuffling is applied
30910447Snilay@cs.wisc.edu
31010447Snilay@cs.wisc.edu            // Get electrically tunable range
31110447Snilay@cs.wisc.edu            double max_assist = getTechModel()->get("Ring->MaxElectricallyTunableFreq");
31210447Snilay@cs.wisc.edu
31310447Snilay@cs.wisc.edu            // Setup calculations
31410447Snilay@cs.wisc.edu            double L = 2 * pi * R;                  // Optical length
31510447Snilay@cs.wisc.edu            double FSR = c / (n_g * L);             // Free spectral range
31610447Snilay@cs.wisc.edu            double freq_sep = FSR / number_rings;   // Channel separation
31710447Snilay@cs.wisc.edu            double heating_range = std::max(0.0, freq_sep - max_assist);  // The distance needed to bridge using heaters
31810447Snilay@cs.wisc.edu
31910447Snilay@cs.wisc.edu            // Calculate tuning power, which is really only the power spent on heating since
32010447Snilay@cs.wisc.edu            // distance tuned electrically is pretty much free
32110447Snilay@cs.wisc.edu            tuning_power = number_rings * heating_range / (tuning_efficiency * heating_efficiency);
32210447Snilay@cs.wisc.edu        }
32310447Snilay@cs.wisc.edu        else if (tuning_method == "FullThermal")
32410447Snilay@cs.wisc.edu        {
32510447Snilay@cs.wisc.edu            // If there is no bit reshuffling backend, each ring must tune to an
32610447Snilay@cs.wisc.edu            // absolute channel frequency. Since we can only heat rings (and not cool),
32710447Snilay@cs.wisc.edu            // we can only red-shift (decrease frequency). Thus, a fabrication bias
32810447Snilay@cs.wisc.edu            // must be applied such that under any process and temperature corner, the
32910447Snilay@cs.wisc.edu            // ring resonance remains above channel resonance
33010447Snilay@cs.wisc.edu            // I'll use 3 sigmas of sigma_r_local and sigma_r_systematic, and bias against
33110447Snilay@cs.wisc.edu            // the full temperature range
33210447Snilay@cs.wisc.edu            double fabrication_bias_freq = 3.0 * sqrt(pow(sigma_r_local, 2) + pow(sigma_r_systematic, 2)) +
33310447Snilay@cs.wisc.edu                (T_max - T_min) * tuning_efficiency;
33410447Snilay@cs.wisc.edu
33510447Snilay@cs.wisc.edu            // The local/systematic variations are 0 on average. Thus, the tuning distance can be calculated as
33610447Snilay@cs.wisc.edu            double tuning_distance = fabrication_bias_freq - (T - T_min) * tuning_efficiency;
33710447Snilay@cs.wisc.edu
33810447Snilay@cs.wisc.edu            // Tuning power needed is just the number of rings * tuning distance / (tuning and heating efficiencies)
33910447Snilay@cs.wisc.edu            tuning_power = number_rings * tuning_distance / (tuning_efficiency * heating_efficiency);
34010447Snilay@cs.wisc.edu        }
34110447Snilay@cs.wisc.edu        else if (tuning_method == "AthermalWithTrim")
34210447Snilay@cs.wisc.edu        {
34310447Snilay@cs.wisc.edu            // Athermal!
34410447Snilay@cs.wisc.edu            tuning_power = 0;
34510447Snilay@cs.wisc.edu        }
34610447Snilay@cs.wisc.edu        else
34710447Snilay@cs.wisc.edu        {
34810447Snilay@cs.wisc.edu            ASSERT(false, "[Error] " + getInstanceName() + " -> Unknown ring tuning method '" + tuning_method + "'!");
34910447Snilay@cs.wisc.edu        }
35010447Snilay@cs.wisc.edu
35110447Snilay@cs.wisc.edu        return tuning_power;
35210447Snilay@cs.wisc.edu    }
35310447Snilay@cs.wisc.edu
35410447Snilay@cs.wisc.edu    unsigned int OpticalLinkBackendRx::getBitReorderDegree()
35510447Snilay@cs.wisc.edu    {
35610447Snilay@cs.wisc.edu        // Get properties
35710447Snilay@cs.wisc.edu        unsigned int number_rings = getGenProperties()->get("InBits");
35810447Snilay@cs.wisc.edu
35910447Snilay@cs.wisc.edu        // Get tech model parameters
36010447Snilay@cs.wisc.edu        double R = getTechModel()->get("Ring->Radius");
36110447Snilay@cs.wisc.edu        double n_g = getTechModel()->get("Ring->GroupIndex");
36210447Snilay@cs.wisc.edu        // This can actually be derived if we know thermo-optic coefficient (delta n / delta T)
36310447Snilay@cs.wisc.edu        double sigma_r_local = getTechModel()->get("Ring->LocalVariationSigma");
36410447Snilay@cs.wisc.edu
36510447Snilay@cs.wisc.edu        // Get constants
36610447Snilay@cs.wisc.edu        double c = Constants::c;
36710447Snilay@cs.wisc.edu        double pi = Constants::pi;
36810447Snilay@cs.wisc.edu
36910447Snilay@cs.wisc.edu        // Calculates the degree of bit re-order multiplexing needed for bit-reshuffling backend
37010447Snilay@cs.wisc.edu        // Bit reshuffling tuning is largely unaffected by sigma_r_systematic. However, sigma_r_local
37110447Snilay@cs.wisc.edu        // Can potentially throw each ring to a channel several channels away. This just calculates
37210447Snilay@cs.wisc.edu        // the degree of bit reorder muxing needed to realign bits in the correct order
37310447Snilay@cs.wisc.edu
37410447Snilay@cs.wisc.edu        // Setup calculations
37510447Snilay@cs.wisc.edu        double L = 2 * pi * R;                  // Optical length
37610447Snilay@cs.wisc.edu        double FSR = c / (n_g * L);             // Free spectral range
37710447Snilay@cs.wisc.edu        double freq_sep = FSR / number_rings;   // Channel separation
37810447Snilay@cs.wisc.edu        // Using 4 sigmas as the worst re-ordering case (must double to get both sides)
37910447Snilay@cs.wisc.edu        unsigned int worst_case_channels = (unsigned int)ceil(2.0 * 4.0 * sigma_r_local / freq_sep);
38010447Snilay@cs.wisc.edu
38110447Snilay@cs.wisc.edu        return worst_case_channels;
38210447Snilay@cs.wisc.edu    }
38310447Snilay@cs.wisc.edu
38410447Snilay@cs.wisc.edu} // namespace DSENT
38510447Snilay@cs.wisc.edu
386