github.com/halybang/go-ethereum@v1.0.5-0.20180325041310-3b262bc1367c/les/helper_test.go (about)

     1  // Copyright 2016 The go-ethereum Authors
     2  // This file is part of the go-ethereum library.
     3  //
     4  // The go-ethereum library is free software: you can redistribute it and/or modify
     5  // it under the terms of the GNU Lesser General Public License as published by
     6  // the Free Software Foundation, either version 3 of the License, or
     7  // (at your option) any later version.
     8  //
     9  // The go-ethereum library is distributed in the hope that it will be useful,
    10  // but WITHOUT ANY WARRANTY; without even the implied warranty of
    11  // MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
    12  // GNU Lesser General Public License for more details.
    13  //
    14  // You should have received a copy of the GNU Lesser General Public License
    15  // along with the go-ethereum library. If not, see <http://www.gnu.org/licenses/>.
    16  
    17  // This file contains some shares testing functionality, common to  multiple
    18  // different files and modules being tested.
    19  
    20  package les
    21  
    22  import (
    23  	"crypto/rand"
    24  	"math/big"
    25  	"sync"
    26  	"testing"
    27  
    28  	"github.com/wanchain/go-wanchain/common"
    29  	"github.com/wanchain/go-wanchain/common/hexutil"
    30  	"github.com/wanchain/go-wanchain/consensus/ethash"
    31  	"github.com/wanchain/go-wanchain/core"
    32  	"github.com/wanchain/go-wanchain/core/types"
    33  	"github.com/wanchain/go-wanchain/core/vm"
    34  	"github.com/wanchain/go-wanchain/crypto"
    35  	"github.com/wanchain/go-wanchain/ethdb"
    36  	"github.com/wanchain/go-wanchain/event"
    37  	"github.com/wanchain/go-wanchain/les/flowcontrol"
    38  	"github.com/wanchain/go-wanchain/light"
    39  	"github.com/wanchain/go-wanchain/p2p"
    40  	"github.com/wanchain/go-wanchain/p2p/discover"
    41  	"github.com/wanchain/go-wanchain/params"
    42  )
    43  
    44  var (
    45  	testBankKey, _  = crypto.HexToECDSA("f1572f76b75b40a7da72d6f2ee7fda3d1189c2d28f0a2f096347055abe344d7f")
    46  	testBankAddress = crypto.PubkeyToAddress(testBankKey.PublicKey)
    47  	testBankFunds   = big.NewInt(1000000)
    48  
    49  	acc1Key, _ = crypto.HexToECDSA("8a1f9a8f95be41cd7ccb6168179afb4504aefe388d1e14474d32c45c72ce7b7a")
    50  	acc2Key, _ = crypto.HexToECDSA("49a7b37aa6f6645917e7b807e9d1c00d4fa71f18343b0d4122a4d2df64dd6fee")
    51  	acc1Addr   = crypto.PubkeyToAddress(acc1Key.PublicKey)
    52  	acc2Addr   = crypto.PubkeyToAddress(acc2Key.PublicKey)
    53  
    54  	testContractCode         = common.Hex2Bytes("606060405260cc8060106000396000f360606040526000357c01000000000000000000000000000000000000000000000000000000009004806360cd2685146041578063c16431b914606b57603f565b005b6055600480803590602001909190505060a9565b6040518082815260200191505060405180910390f35b60886004808035906020019091908035906020019091905050608a565b005b80600060005083606481101560025790900160005b50819055505b5050565b6000600060005082606481101560025790900160005b5054905060c7565b91905056")
    55  	testContractAddr         common.Address
    56  	testContractCodeDeployed = testContractCode[16:]
    57  	testContractDeployed     = uint64(2)
    58  
    59  	testBufLimit = uint64(100)
    60  
    61  	bigTxGas = new(big.Int).SetUint64(params.TxGas)
    62  )
    63  
    64  /*
    65  contract test {
    66  
    67      uint256[100] data;
    68  
    69      function Put(uint256 addr, uint256 value) {
    70          data[addr] = value;
    71      }
    72  
    73      function Get(uint256 addr) constant returns (uint256 value) {
    74          return data[addr];
    75      }
    76  }
    77  */
    78  
    79  func testChainGen(i int, block *core.BlockGen) {
    80  	signer := types.HomesteadSigner{}
    81  
    82  	switch i {
    83  	case 0:
    84  		// In block 1, the test bank sends account #1 some ether.
    85  		tx, _ := types.SignTx(types.NewTransaction(block.TxNonce(testBankAddress), acc1Addr, big.NewInt(10000), bigTxGas, nil, nil), signer, testBankKey)
    86  		block.AddTx(tx)
    87  	case 1:
    88  		// In block 2, the test bank sends some more ether to account #1.
    89  		// acc1Addr passes it on to account #2.
    90  		// acc1Addr creates a test contract.
    91  		tx1, _ := types.SignTx(types.NewTransaction(block.TxNonce(testBankAddress), acc1Addr, big.NewInt(1000), bigTxGas, nil, nil), signer, testBankKey)
    92  		nonce := block.TxNonce(acc1Addr)
    93  		tx2, _ := types.SignTx(types.NewTransaction(nonce, acc2Addr, big.NewInt(1000), bigTxGas, nil, nil), signer, acc1Key)
    94  		nonce++
    95  		tx3, _ := types.SignTx(types.NewContractCreation(nonce, big.NewInt(0), big.NewInt(200000), big.NewInt(0), testContractCode), signer, acc1Key)
    96  		testContractAddr = crypto.CreateAddress(acc1Addr, nonce)
    97  		block.AddTx(tx1)
    98  		block.AddTx(tx2)
    99  		block.AddTx(tx3)
   100  	case 2:
   101  		// Block 3 is empty but was mined by account #2.
   102  		block.SetCoinbase(acc2Addr)
   103  		block.SetExtra([]byte("yeehaw"))
   104  		data := common.Hex2Bytes("C16431B900000000000000000000000000000000000000000000000000000000000000010000000000000000000000000000000000000000000000000000000000000001")
   105  		tx, _ := types.SignTx(types.NewTransaction(block.TxNonce(testBankAddress), testContractAddr, big.NewInt(0), big.NewInt(100000), nil, data), signer, testBankKey)
   106  		block.AddTx(tx)
   107  	case 3:
   108  		// Block 4 includes blocks 2 and 3 as uncle headers (with modified extra data).
   109  		//b2 := block.PrevBlock(1).Header()
   110  		//b2.Extra = []byte("foo")
   111  		//block.AddUncle(b2)
   112  		//b3 := block.PrevBlock(2).Header()
   113  		//b3.Extra = []byte("foo")
   114  		//block.AddUncle(b3)
   115  		data := common.Hex2Bytes("C16431B900000000000000000000000000000000000000000000000000000000000000020000000000000000000000000000000000000000000000000000000000000002")
   116  		tx, _ := types.SignTx(types.NewTransaction(block.TxNonce(testBankAddress), testContractAddr, big.NewInt(0), big.NewInt(100000), nil, data), signer, testBankKey)
   117  		block.AddTx(tx)
   118  	}
   119  }
   120  
   121  func testRCL() RequestCostList {
   122  	cl := make(RequestCostList, len(reqList))
   123  	for i, code := range reqList {
   124  		cl[i].MsgCode = code
   125  		cl[i].BaseCost = 0
   126  		cl[i].ReqCost = 0
   127  	}
   128  	return cl
   129  }
   130  
   131  // newTestProtocolManager creates a new protocol manager for testing purposes,
   132  // with the given number of blocks already known, and potential notification
   133  // channels for different events.
   134  func newTestProtocolManager(lightSync bool, blocks int, generator func(int, *core.BlockGen), peers *peerSet, odr *LesOdr, db ethdb.Database) (*ProtocolManager, error) {
   135  	var (
   136  		evmux  = new(event.TypeMux)
   137  		engine = ethash.NewFaker(db)
   138  		gspec  = core.Genesis{
   139  			Config:    params.TestChainConfig,
   140  			Alloc:     core.GenesisAlloc{testBankAddress: {Balance: testBankFunds}},
   141  			ExtraData: hexutil.MustDecode("0xf9b32578b4420a36f132db32b56f3831a7cc1804810524175efa012446103d1a04c9f4263a962accdb05642eabc8347ec78e21bdf0d906ba579d423ab5eb9bf02a924367ed9d4f86dfcb1c572cd9a4f80036805b6846f26ac35f2a7d7eda4a2a58f08e8ef073d4e52c506f3f288faa9db1c1e5ae0f1e70f8c38eb01bce9bcb61327532dc5a540da4cf484ae57e98bc5a465c1d2afa6b9376709a525981f53d493a46ef1eb55428b3b88a222d80d23531054ef51dbd100cf8286136659a7d63a38a154e28dbf3e0fd"),
   142  		}
   143  		genesis = gspec.MustCommit(db)
   144  		chain   BlockChain
   145  	)
   146  	if peers == nil {
   147  		peers = newPeerSet()
   148  	}
   149  
   150  	if lightSync {
   151  		chain, _ = light.NewLightChain(odr, gspec.Config, engine)
   152  	} else {
   153  		blockchain, _ := core.NewBlockChain(db, gspec.Config, engine, vm.Config{})
   154  		//gchain, _ := core.GenerateChain(gspec.Config, genesis, db, blocks, generator)
   155  		chainEnv := core.NewChainEnv(gspec.Config, &gspec, engine, blockchain, db)
   156  		gchain, _ := chainEnv.GenerateChain(genesis, blocks, generator)
   157  		if _, err := blockchain.InsertChain(gchain); err != nil {
   158  			panic(err)
   159  		}
   160  		chain = blockchain
   161  	}
   162  
   163  	pm, err := NewProtocolManager(gspec.Config, lightSync, NetworkId, evmux, engine, peers, chain, nil, db, odr, nil, make(chan struct{}), new(sync.WaitGroup))
   164  	if err != nil {
   165  		return nil, err
   166  	}
   167  	if !lightSync {
   168  		srv := &LesServer{protocolManager: pm}
   169  		pm.server = srv
   170  
   171  		srv.defParams = &flowcontrol.ServerParams{
   172  			BufLimit:    testBufLimit,
   173  			MinRecharge: 1,
   174  		}
   175  
   176  		srv.fcManager = flowcontrol.NewClientManager(50, 10, 1000000000)
   177  		srv.fcCostStats = newCostStats(nil)
   178  	}
   179  	pm.Start()
   180  	return pm, nil
   181  }
   182  
   183  // newTestProtocolManagerMust creates a new protocol manager for testing purposes,
   184  // with the given number of blocks already known, and potential notification
   185  // channels for different events. In case of an error, the constructor force-
   186  // fails the test.
   187  func newTestProtocolManagerMust(t *testing.T, lightSync bool, blocks int, generator func(int, *core.BlockGen), peers *peerSet, odr *LesOdr, db ethdb.Database) *ProtocolManager {
   188  	pm, err := newTestProtocolManager(lightSync, blocks, generator, peers, odr, db)
   189  	if err != nil {
   190  		t.Fatalf("Failed to create protocol manager: %v", err)
   191  	}
   192  	return pm
   193  }
   194  
   195  // testPeer is a simulated peer to allow testing direct network calls.
   196  type testPeer struct {
   197  	net p2p.MsgReadWriter // Network layer reader/writer to simulate remote messaging
   198  	app *p2p.MsgPipeRW    // Application layer reader/writer to simulate the local side
   199  	*peer
   200  }
   201  
   202  // newTestPeer creates a new peer registered at the given protocol manager.
   203  func newTestPeer(t *testing.T, name string, version int, pm *ProtocolManager, shake bool) (*testPeer, <-chan error) {
   204  	// Create a message pipe to communicate through
   205  	app, net := p2p.MsgPipe()
   206  
   207  	// Generate a random id and create the peer
   208  	var id discover.NodeID
   209  	rand.Read(id[:])
   210  
   211  	peer := pm.newPeer(version, NetworkId, p2p.NewPeer(id, name, nil), net)
   212  
   213  	// Start the peer on a new thread
   214  	errc := make(chan error, 1)
   215  	go func() {
   216  		select {
   217  		case pm.newPeerCh <- peer:
   218  			errc <- pm.handle(peer)
   219  		case <-pm.quitSync:
   220  			errc <- p2p.DiscQuitting
   221  		}
   222  	}()
   223  	tp := &testPeer{
   224  		app:  app,
   225  		net:  net,
   226  		peer: peer,
   227  	}
   228  	// Execute any implicitly requested handshakes and return
   229  	if shake {
   230  		td, head, genesis := pm.blockchain.Status()
   231  		headNum := pm.blockchain.CurrentHeader().Number.Uint64()
   232  		tp.handshake(t, td, head, headNum, genesis)
   233  	}
   234  	return tp, errc
   235  }
   236  
   237  func newTestPeerPair(name string, version int, pm, pm2 *ProtocolManager) (*peer, <-chan error, *peer, <-chan error) {
   238  	// Create a message pipe to communicate through
   239  	app, net := p2p.MsgPipe()
   240  
   241  	// Generate a random id and create the peer
   242  	var id discover.NodeID
   243  	rand.Read(id[:])
   244  
   245  	peer := pm.newPeer(version, NetworkId, p2p.NewPeer(id, name, nil), net)
   246  	peer2 := pm2.newPeer(version, NetworkId, p2p.NewPeer(id, name, nil), app)
   247  
   248  	// Start the peer on a new thread
   249  	errc := make(chan error, 1)
   250  	errc2 := make(chan error, 1)
   251  	go func() {
   252  		select {
   253  		case pm.newPeerCh <- peer:
   254  			errc <- pm.handle(peer)
   255  		case <-pm.quitSync:
   256  			errc <- p2p.DiscQuitting
   257  		}
   258  	}()
   259  	go func() {
   260  		select {
   261  		case pm2.newPeerCh <- peer2:
   262  			errc2 <- pm2.handle(peer2)
   263  		case <-pm2.quitSync:
   264  			errc2 <- p2p.DiscQuitting
   265  		}
   266  	}()
   267  	return peer, errc, peer2, errc2
   268  }
   269  
   270  // handshake simulates a trivial handshake that expects the same state from the
   271  // remote side as we are simulating locally.
   272  func (p *testPeer) handshake(t *testing.T, td *big.Int, head common.Hash, headNum uint64, genesis common.Hash) {
   273  	var expList keyValueList
   274  	expList = expList.add("protocolVersion", uint64(p.version))
   275  	expList = expList.add("networkId", uint64(NetworkId))
   276  	expList = expList.add("headTd", td)
   277  	expList = expList.add("headHash", head)
   278  	expList = expList.add("headNum", headNum)
   279  	expList = expList.add("genesisHash", genesis)
   280  	sendList := make(keyValueList, len(expList))
   281  	copy(sendList, expList)
   282  	expList = expList.add("serveHeaders", nil)
   283  	expList = expList.add("serveChainSince", uint64(0))
   284  	expList = expList.add("serveStateSince", uint64(0))
   285  	expList = expList.add("txRelay", nil)
   286  	expList = expList.add("flowControl/BL", testBufLimit)
   287  	expList = expList.add("flowControl/MRR", uint64(1))
   288  	expList = expList.add("flowControl/MRC", testRCL())
   289  
   290  	if err := p2p.ExpectMsg(p.app, StatusMsg, expList); err != nil {
   291  		t.Fatalf("status recv: %v", err)
   292  	}
   293  	if err := p2p.Send(p.app, StatusMsg, sendList); err != nil {
   294  		t.Fatalf("status send: %v", err)
   295  	}
   296  
   297  	p.fcServerParams = &flowcontrol.ServerParams{
   298  		BufLimit:    testBufLimit,
   299  		MinRecharge: 1,
   300  	}
   301  }
   302  
   303  // close terminates the local side of the peer, notifying the remote protocol
   304  // manager of termination.
   305  func (p *testPeer) close() {
   306  	p.app.Close()
   307  }