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1 /*
2  * Copyright (C) 2020 The Android Open Source Project
3  *
4  * Licensed under the Apache License, Version 2.0 (the "License");
5  * you may not use this file except in compliance with the License.
6  * You may obtain a copy of the License at
7  *
8  *      http://www.apache.org/licenses/LICENSE-2.0
9  *
10  * Unless required by applicable law or agreed to in writing, software
11  * distributed under the License is distributed on an "AS IS" BASIS,
12  * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13  * See the License for the specific language governing permissions and
14  * limitations under the License.
15  */
16 package com.android.networkstack.tethering;
17 
18 import static android.net.NetworkCapabilities.TRANSPORT_VPN;
19 import static android.net.TetheringManager.TETHERING_BLUETOOTH;
20 import static android.net.TetheringManager.TETHERING_WIFI_P2P;
21 
22 import static com.android.net.module.util.Inet4AddressUtils.inet4AddressToIntHTH;
23 import static com.android.net.module.util.Inet4AddressUtils.intToInet4AddressHTH;
24 import static com.android.net.module.util.Inet4AddressUtils.prefixLengthToV4NetmaskIntHTH;
25 import static com.android.networkstack.tethering.util.PrefixUtils.asIpPrefix;
26 
27 import static java.util.Arrays.asList;
28 
29 import android.content.Context;
30 import android.net.ConnectivityManager;
31 import android.net.IpPrefix;
32 import android.net.LinkAddress;
33 import android.net.Network;
34 import android.net.ip.IpServer;
35 import android.util.ArrayMap;
36 import android.util.ArraySet;
37 import android.util.SparseArray;
38 
39 import androidx.annotation.NonNull;
40 import androidx.annotation.Nullable;
41 
42 import com.android.internal.annotations.VisibleForTesting;
43 import com.android.internal.util.IndentingPrintWriter;
44 
45 import java.net.Inet4Address;
46 import java.net.InetAddress;
47 import java.util.ArrayList;
48 import java.util.Arrays;
49 import java.util.HashSet;
50 import java.util.List;
51 import java.util.Random;
52 import java.util.Set;
53 
54 /**
55  * This class coordinate IP addresses conflict problem.
56  *
57  * Tethering downstream IP addresses may conflict with network assigned addresses. This
58  * coordinator is responsible for recording all of network assigned addresses and dispatched
59  * free address to downstream interfaces.
60  *
61  * This class is not thread-safe and should be accessed on the same tethering internal thread.
62  * @hide
63  */
64 public class PrivateAddressCoordinator {
65     public static final int PREFIX_LENGTH = 24;
66 
67     // Upstream monitor would be stopped when tethering is down. When tethering restart, downstream
68     // address may be requested before coordinator get current upstream notification. To ensure
69     // coordinator do not select conflict downstream prefix, mUpstreamPrefixMap would not be cleared
70     // when tethering is down. Instead tethering would remove all deprecated upstreams from
71     // mUpstreamPrefixMap when tethering is starting. See #maybeRemoveDeprecatedUpstreams().
72     private final ArrayMap<Network, List<IpPrefix>> mUpstreamPrefixMap;
73     private final ArraySet<IpServer> mDownstreams;
74     private static final String LEGACY_WIFI_P2P_IFACE_ADDRESS = "192.168.49.1/24";
75     private static final String LEGACY_BLUETOOTH_IFACE_ADDRESS = "192.168.44.1/24";
76     private final List<IpPrefix> mTetheringPrefixes;
77     private final ConnectivityManager mConnectivityMgr;
78     private final TetheringConfiguration mConfig;
79     // keyed by downstream type(TetheringManager.TETHERING_*).
80     private final SparseArray<LinkAddress> mCachedAddresses;
81 
PrivateAddressCoordinator(Context context, TetheringConfiguration config)82     public PrivateAddressCoordinator(Context context, TetheringConfiguration config) {
83         mDownstreams = new ArraySet<>();
84         mUpstreamPrefixMap = new ArrayMap<>();
85         mConnectivityMgr = (ConnectivityManager) context.getSystemService(
86                 Context.CONNECTIVITY_SERVICE);
87         mConfig = config;
88         mCachedAddresses = new SparseArray<>();
89         // Reserved static addresses for bluetooth and wifi p2p.
90         mCachedAddresses.put(TETHERING_BLUETOOTH, new LinkAddress(LEGACY_BLUETOOTH_IFACE_ADDRESS));
91         mCachedAddresses.put(TETHERING_WIFI_P2P, new LinkAddress(LEGACY_WIFI_P2P_IFACE_ADDRESS));
92 
93         mTetheringPrefixes = new ArrayList<>(Arrays.asList(new IpPrefix("192.168.0.0/16"),
94             new IpPrefix("172.16.0.0/12"), new IpPrefix("10.0.0.0/8")));
95     }
96 
97     /**
98      * Record a new upstream IpPrefix which may conflict with tethering downstreams.
99      * The downstreams will be notified if a conflict is found. When updateUpstreamPrefix is called,
100      * UpstreamNetworkState must have an already populated LinkProperties.
101      */
updateUpstreamPrefix(final UpstreamNetworkState ns)102     public void updateUpstreamPrefix(final UpstreamNetworkState ns) {
103         // Do not support VPN as upstream. Normally, networkCapabilities is not expected to be null,
104         // but just checking to be sure.
105         if (ns.networkCapabilities != null && ns.networkCapabilities.hasTransport(TRANSPORT_VPN)) {
106             removeUpstreamPrefix(ns.network);
107             return;
108         }
109 
110         final ArrayList<IpPrefix> ipv4Prefixes = getIpv4Prefixes(
111                 ns.linkProperties.getAllLinkAddresses());
112         if (ipv4Prefixes.isEmpty()) {
113             removeUpstreamPrefix(ns.network);
114             return;
115         }
116 
117         mUpstreamPrefixMap.put(ns.network, ipv4Prefixes);
118         handleMaybePrefixConflict(ipv4Prefixes);
119     }
120 
getIpv4Prefixes(final List<LinkAddress> linkAddresses)121     private ArrayList<IpPrefix> getIpv4Prefixes(final List<LinkAddress> linkAddresses) {
122         final ArrayList<IpPrefix> list = new ArrayList<>();
123         for (LinkAddress address : linkAddresses) {
124             if (!address.isIpv4()) continue;
125 
126             list.add(asIpPrefix(address));
127         }
128 
129         return list;
130     }
131 
handleMaybePrefixConflict(final List<IpPrefix> prefixes)132     private void handleMaybePrefixConflict(final List<IpPrefix> prefixes) {
133         for (IpServer downstream : mDownstreams) {
134             final IpPrefix target = getDownstreamPrefix(downstream);
135 
136             for (IpPrefix source : prefixes) {
137                 if (isConflictPrefix(source, target)) {
138                     downstream.sendMessage(IpServer.CMD_NOTIFY_PREFIX_CONFLICT);
139                     break;
140                 }
141             }
142         }
143     }
144 
145     /** Remove IpPrefix records corresponding to input network. */
removeUpstreamPrefix(final Network network)146     public void removeUpstreamPrefix(final Network network) {
147         mUpstreamPrefixMap.remove(network);
148     }
149 
150     /**
151      * Maybe remove deprecated upstream records, this would be called once tethering started without
152      * any exiting tethered downstream.
153      */
maybeRemoveDeprecatedUpstreams()154     public void maybeRemoveDeprecatedUpstreams() {
155         if (mUpstreamPrefixMap.isEmpty()) return;
156 
157         // Remove all upstreams that are no longer valid networks
158         final Set<Network> toBeRemoved = new HashSet<>(mUpstreamPrefixMap.keySet());
159         toBeRemoved.removeAll(asList(mConnectivityMgr.getAllNetworks()));
160 
161         mUpstreamPrefixMap.removeAll(toBeRemoved);
162     }
163 
164     /**
165      * Pick a random available address and mark its prefix as in use for the provided IpServer,
166      * returns null if there is no available address.
167      */
168     @Nullable
requestDownstreamAddress(final IpServer ipServer, boolean useLastAddress)169     public LinkAddress requestDownstreamAddress(final IpServer ipServer, boolean useLastAddress) {
170         if (mConfig.shouldEnableWifiP2pDedicatedIp()
171                 && ipServer.interfaceType() == TETHERING_WIFI_P2P) {
172             return new LinkAddress(LEGACY_WIFI_P2P_IFACE_ADDRESS);
173         }
174 
175         final LinkAddress cachedAddress = mCachedAddresses.get(ipServer.interfaceType());
176         if (useLastAddress && cachedAddress != null
177                 && !isConflictWithUpstream(asIpPrefix(cachedAddress))) {
178             mDownstreams.add(ipServer);
179             return cachedAddress;
180         }
181 
182         for (IpPrefix prefixRange : mTetheringPrefixes) {
183             final LinkAddress newAddress = chooseDownstreamAddress(prefixRange);
184             if (newAddress != null) {
185                 mDownstreams.add(ipServer);
186                 mCachedAddresses.put(ipServer.interfaceType(), newAddress);
187                 return newAddress;
188             }
189         }
190 
191         // No available address.
192         return null;
193     }
194 
getPrefixBaseAddress(final IpPrefix prefix)195     private int getPrefixBaseAddress(final IpPrefix prefix) {
196         return inet4AddressToIntHTH((Inet4Address) prefix.getAddress());
197     }
198 
199     /**
200      * Check whether input prefix conflict with upstream prefixes or in-use downstream prefixes.
201      * If yes, return one of them.
202      */
getConflictPrefix(final IpPrefix prefix)203     private IpPrefix getConflictPrefix(final IpPrefix prefix) {
204         final IpPrefix upstream = getConflictWithUpstream(prefix);
205         if (upstream != null) return upstream;
206 
207         return getInUseDownstreamPrefix(prefix);
208     }
209 
210     // Get the next non-conflict sub prefix. E.g: To get next sub prefix from 10.0.0.0/8, if the
211     // previously selected prefix is 10.20.42.0/24(subPrefix: 0.20.42.0) and the conflicting prefix
212     // is 10.16.0.0/20 (10.16.0.0 ~ 10.16.15.255), then the max address under subPrefix is
213     // 0.16.15.255 and the next subPrefix is 0.16.16.255/24 (0.16.15.255 + 0.0.1.0).
214     // Note: the sub address 0.0.0.255 here is fine to be any value that it will be replaced as
215     // selected random sub address later.
getNextSubPrefix(final IpPrefix conflictPrefix, final int prefixRangeMask)216     private int getNextSubPrefix(final IpPrefix conflictPrefix, final int prefixRangeMask) {
217         final int suffixMask = ~prefixLengthToV4NetmaskIntHTH(conflictPrefix.getPrefixLength());
218         // The largest offset within the prefix assignment block that still conflicts with
219         // conflictPrefix.
220         final int maxConflict =
221                 (getPrefixBaseAddress(conflictPrefix) | suffixMask) & ~prefixRangeMask;
222 
223         final int prefixMask = prefixLengthToV4NetmaskIntHTH(PREFIX_LENGTH);
224         // Pick a sub prefix a full prefix (1 << (32 - PREFIX_LENGTH) addresses) greater than
225         // maxConflict. This ensures that the selected prefix never overlaps with conflictPrefix.
226         // There is no need to mask the result with PREFIX_LENGTH bits because this is done by
227         // findAvailablePrefixFromRange when it constructs the prefix.
228         return maxConflict + (1 << (32 - PREFIX_LENGTH));
229     }
230 
chooseDownstreamAddress(final IpPrefix prefixRange)231     private LinkAddress chooseDownstreamAddress(final IpPrefix prefixRange) {
232         // The netmask of the prefix assignment block (e.g., 0xfff00000 for 172.16.0.0/12).
233         final int prefixRangeMask = prefixLengthToV4NetmaskIntHTH(prefixRange.getPrefixLength());
234 
235         // The zero address in the block (e.g., 0xac100000 for 172.16.0.0/12).
236         final int baseAddress = getPrefixBaseAddress(prefixRange);
237 
238         // The subnet mask corresponding to PREFIX_LENGTH.
239         final int prefixMask = prefixLengthToV4NetmaskIntHTH(PREFIX_LENGTH);
240 
241         // The offset within prefixRange of a randomly-selected prefix of length PREFIX_LENGTH.
242         // This may not be the prefix of the address returned by this method:
243         // - If it is already in use, the method will return an address in another prefix.
244         // - If all prefixes within prefixRange are in use, the method will return null. For
245         // example, for a /24 prefix within 172.26.0.0/12, this will be a multiple of 256 in
246         // [0, 1048576). In other words, a random 32-bit number with mask 0x000fff00.
247         //
248         // prefixRangeMask is required to ensure no wrapping. For example, consider:
249         // - prefixRange 127.0.0.0/8
250         // - randomPrefixStart 127.255.255.0
251         // - A conflicting prefix of 127.255.254.0/23
252         // In this case without prefixRangeMask, getNextSubPrefix would return 128.0.0.0, which
253         // means the "start < end" check in findAvailablePrefixFromRange would not reject the prefix
254         // because Java doesn't have unsigned integers, so 128.0.0.0 = 0x80000000 = -2147483648
255         // is less than 127.0.0.0 = 0x7f000000 = 2130706432.
256         //
257         // Additionally, it makes debug output easier to read by making the numbers smaller.
258         final int randomPrefixStart = getRandomInt() & ~prefixRangeMask & prefixMask;
259 
260         // A random offset within the prefix. Used to determine the local address once the prefix
261         // is selected. It does not result in an IPv4 address ending in .0, .1, or .255
262         // For a PREFIX_LENGTH of 255, this is a number between 2 and 254.
263         final int subAddress = getSanitizedSubAddr(~prefixMask);
264 
265         // Find a prefix length PREFIX_LENGTH between randomPrefixStart and the end of the block,
266         // such that the prefix does not conflict with any upstream.
267         IpPrefix downstreamPrefix = findAvailablePrefixFromRange(
268                  randomPrefixStart, (~prefixRangeMask) + 1, baseAddress, prefixRangeMask);
269         if (downstreamPrefix != null) return getLinkAddress(downstreamPrefix, subAddress);
270 
271         // If that failed, do the same, but between 0 and randomPrefixStart.
272         downstreamPrefix = findAvailablePrefixFromRange(
273                 0, randomPrefixStart, baseAddress, prefixRangeMask);
274 
275         return getLinkAddress(downstreamPrefix, subAddress);
276     }
277 
getLinkAddress(final IpPrefix prefix, final int subAddress)278     private LinkAddress getLinkAddress(final IpPrefix prefix, final int subAddress) {
279         if (prefix == null) return null;
280 
281         final InetAddress address = intToInet4AddressHTH(getPrefixBaseAddress(prefix) | subAddress);
282         return new LinkAddress(address, PREFIX_LENGTH);
283     }
284 
findAvailablePrefixFromRange(final int start, final int end, final int baseAddress, final int prefixRangeMask)285     private IpPrefix findAvailablePrefixFromRange(final int start, final int end,
286             final int baseAddress, final int prefixRangeMask) {
287         int newSubPrefix = start;
288         while (newSubPrefix < end) {
289             final InetAddress address = intToInet4AddressHTH(baseAddress | newSubPrefix);
290             final IpPrefix prefix = new IpPrefix(address, PREFIX_LENGTH);
291 
292             final IpPrefix conflictPrefix = getConflictPrefix(prefix);
293 
294             if (conflictPrefix == null) return prefix;
295 
296             newSubPrefix = getNextSubPrefix(conflictPrefix, prefixRangeMask);
297         }
298 
299         return null;
300     }
301 
302     /** Get random int which could be used to generate random address. */
303     @VisibleForTesting
getRandomInt()304     public int getRandomInt() {
305         return (new Random()).nextInt();
306     }
307 
308     /** Get random subAddress and avoid selecting x.x.x.0, x.x.x.1 and x.x.x.255 address. */
getSanitizedSubAddr(final int subAddrMask)309     private int getSanitizedSubAddr(final int subAddrMask) {
310         final int randomSubAddr = getRandomInt() & subAddrMask;
311         // If prefix length > 30, the selecting speace would be less than 4 which may be hard to
312         // avoid 3 consecutive address.
313         if (PREFIX_LENGTH > 30) return randomSubAddr;
314 
315         // TODO: maybe it is not necessary to avoid .0, .1 and .255 address because tethering
316         // address would not be conflicted. This code only works because PREFIX_LENGTH is not longer
317         // than 24
318         final int candidate = randomSubAddr & 0xff;
319         if (candidate == 0 || candidate == 1 || candidate == 255) {
320             return (randomSubAddr & 0xfffffffc) + 2;
321         }
322 
323         return randomSubAddr;
324     }
325 
326     /** Release downstream record for IpServer. */
releaseDownstream(final IpServer ipServer)327     public void releaseDownstream(final IpServer ipServer) {
328         mDownstreams.remove(ipServer);
329     }
330 
331     /** Clear current upstream prefixes records. */
clearUpstreamPrefixes()332     public void clearUpstreamPrefixes() {
333         mUpstreamPrefixMap.clear();
334     }
335 
getConflictWithUpstream(final IpPrefix prefix)336     private IpPrefix getConflictWithUpstream(final IpPrefix prefix) {
337         for (int i = 0; i < mUpstreamPrefixMap.size(); i++) {
338             final List<IpPrefix> list = mUpstreamPrefixMap.valueAt(i);
339             for (IpPrefix upstream : list) {
340                 if (isConflictPrefix(prefix, upstream)) return upstream;
341             }
342         }
343         return null;
344     }
345 
isConflictWithUpstream(final IpPrefix prefix)346     private boolean isConflictWithUpstream(final IpPrefix prefix) {
347         return getConflictWithUpstream(prefix) != null;
348     }
349 
isConflictPrefix(final IpPrefix prefix1, final IpPrefix prefix2)350     private boolean isConflictPrefix(final IpPrefix prefix1, final IpPrefix prefix2) {
351         if (prefix2.getPrefixLength() < prefix1.getPrefixLength()) {
352             return prefix2.contains(prefix1.getAddress());
353         }
354 
355         return prefix1.contains(prefix2.getAddress());
356     }
357 
358     // InUse Prefixes are prefixes of mCachedAddresses which are active downstream addresses, last
359     // downstream addresses(reserved for next time) and static addresses(e.g. bluetooth, wifi p2p).
getInUseDownstreamPrefix(final IpPrefix prefix)360     private IpPrefix getInUseDownstreamPrefix(final IpPrefix prefix) {
361         for (int i = 0; i < mCachedAddresses.size(); i++) {
362             final IpPrefix downstream = asIpPrefix(mCachedAddresses.valueAt(i));
363             if (isConflictPrefix(prefix, downstream)) return downstream;
364         }
365 
366         // IpServer may use manually-defined address (mStaticIpv4ServerAddr) which does not include
367         // in mCachedAddresses.
368         for (IpServer downstream : mDownstreams) {
369             final IpPrefix target = getDownstreamPrefix(downstream);
370 
371             if (isConflictPrefix(prefix, target)) return target;
372         }
373 
374         return null;
375     }
376 
377     @NonNull
getDownstreamPrefix(final IpServer downstream)378     private IpPrefix getDownstreamPrefix(final IpServer downstream) {
379         final LinkAddress address = downstream.getAddress();
380 
381         return asIpPrefix(address);
382     }
383 
dump(final IndentingPrintWriter pw)384     void dump(final IndentingPrintWriter pw) {
385         pw.println("mTetheringPrefixes:");
386         pw.increaseIndent();
387         for (IpPrefix prefix : mTetheringPrefixes) {
388             pw.println(prefix);
389         }
390         pw.decreaseIndent();
391 
392         pw.println("mUpstreamPrefixMap:");
393         pw.increaseIndent();
394         for (int i = 0; i < mUpstreamPrefixMap.size(); i++) {
395             pw.println(mUpstreamPrefixMap.keyAt(i) + " - " + mUpstreamPrefixMap.valueAt(i));
396         }
397         pw.decreaseIndent();
398 
399         pw.println("mDownstreams:");
400         pw.increaseIndent();
401         for (IpServer ipServer : mDownstreams) {
402             pw.println(ipServer.interfaceType() + " - " + ipServer.getAddress());
403         }
404         pw.decreaseIndent();
405 
406         pw.println("mCachedAddresses:");
407         pw.increaseIndent();
408         for (int i = 0; i < mCachedAddresses.size(); i++) {
409             pw.println(mCachedAddresses.keyAt(i) + " - " + mCachedAddresses.valueAt(i));
410         }
411         pw.decreaseIndent();
412     }
413 }
414