Capability.hpp 17 KB

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  1. /*
  2. * ZeroTier One - Network Virtualization Everywhere
  3. * Copyright (C) 2011-2019 ZeroTier, Inc. https://www.zerotier.com/
  4. *
  5. * This program is free software: you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License as published by
  7. * the Free Software Foundation, either version 3 of the License, or
  8. * (at your option) any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  17. *
  18. * --
  19. *
  20. * You can be released from the requirements of the license by purchasing
  21. * a commercial license. Buying such a license is mandatory as soon as you
  22. * develop commercial closed-source software that incorporates or links
  23. * directly against ZeroTier software without disclosing the source code
  24. * of your own application.
  25. */
  26. #ifndef ZT_CAPABILITY_HPP
  27. #define ZT_CAPABILITY_HPP
  28. #include <stdio.h>
  29. #include <stdlib.h>
  30. #include <string.h>
  31. #include "Constants.hpp"
  32. #include "Credential.hpp"
  33. #include "Address.hpp"
  34. #include "C25519.hpp"
  35. #include "Utils.hpp"
  36. #include "Buffer.hpp"
  37. #include "Identity.hpp"
  38. #include "../include/ZeroTierOne.h"
  39. namespace ZeroTier {
  40. class RuntimeEnvironment;
  41. /**
  42. * A set of grouped and signed network flow rules
  43. *
  44. * On the sending side the sender does the following for each packet:
  45. *
  46. * (1) Evaluates its capabilities in ascending order of ID to determine
  47. * which capability allows it to transmit this packet.
  48. * (2) If it has not done so lately, it then sends this capability to the
  49. * receiving peer ("presents" it).
  50. * (3) The sender then sends the packet.
  51. *
  52. * On the receiving side the receiver evaluates the capabilities presented
  53. * by the sender. If any valid un-expired capability allows this packet it
  54. * is accepted.
  55. *
  56. * Note that this is after evaluation of network scope rules and only if
  57. * network scope rules do not deliver an explicit match.
  58. *
  59. * Capabilities support a chain of custody. This is currently unused but
  60. * in the future would allow the publication of capabilities that can be
  61. * handed off between nodes. Limited transferability of capabilities is
  62. * a feature of true capability based security.
  63. */
  64. class Capability : public Credential
  65. {
  66. friend class Credential;
  67. public:
  68. static inline Credential::Type credentialType() { return Credential::CREDENTIAL_TYPE_CAPABILITY; }
  69. inline Capability() :
  70. _nwid(0),
  71. _ts(0),
  72. _id(0),
  73. _maxCustodyChainLength(0),
  74. _ruleCount(0)
  75. {
  76. memset(_rules,0,sizeof(_rules));
  77. memset(_custody,0,sizeof(_custody));
  78. }
  79. /**
  80. * @param id Capability ID
  81. * @param nwid Network ID
  82. * @param ts Timestamp (at controller)
  83. * @param mccl Maximum custody chain length (1 to create non-transferable capability)
  84. * @param rules Network flow rules for this capability
  85. * @param ruleCount Number of flow rules
  86. */
  87. inline Capability(uint32_t id,uint64_t nwid,int64_t ts,unsigned int mccl,const ZT_VirtualNetworkRule *rules,unsigned int ruleCount) :
  88. _nwid(nwid),
  89. _ts(ts),
  90. _id(id),
  91. _maxCustodyChainLength((mccl > 0) ? ((mccl < ZT_MAX_CAPABILITY_CUSTODY_CHAIN_LENGTH) ? mccl : (unsigned int)ZT_MAX_CAPABILITY_CUSTODY_CHAIN_LENGTH) : 1),
  92. _ruleCount((ruleCount < ZT_MAX_CAPABILITY_RULES) ? ruleCount : ZT_MAX_CAPABILITY_RULES)
  93. {
  94. if (_ruleCount > 0)
  95. memcpy(_rules,rules,sizeof(ZT_VirtualNetworkRule) * _ruleCount);
  96. }
  97. /**
  98. * @return Rules -- see ruleCount() for size of array
  99. */
  100. inline const ZT_VirtualNetworkRule *rules() const { return _rules; }
  101. /**
  102. * @return Number of rules in rules()
  103. */
  104. inline unsigned int ruleCount() const { return _ruleCount; }
  105. /**
  106. * @return ID and evaluation order of this capability in network
  107. */
  108. inline uint32_t id() const { return _id; }
  109. /**
  110. * @return Network ID for which this capability was issued
  111. */
  112. inline uint64_t networkId() const { return _nwid; }
  113. /**
  114. * @return Timestamp
  115. */
  116. inline int64_t timestamp() const { return _ts; }
  117. /**
  118. * @return Last 'to' address in chain of custody
  119. */
  120. inline Address issuedTo() const
  121. {
  122. Address i2;
  123. for(unsigned int i=0;i<ZT_MAX_CAPABILITY_CUSTODY_CHAIN_LENGTH;++i) {
  124. if (!_custody[i].to)
  125. return i2;
  126. else i2 = _custody[i].to;
  127. }
  128. return i2;
  129. }
  130. /**
  131. * Sign this capability and add signature to its chain of custody
  132. *
  133. * If this returns false, this object should be considered to be
  134. * in an undefined state and should be discarded. False can be returned
  135. * if there is no more room for signatures (max chain length reached)
  136. * or if the 'from' identity does not include a secret key to allow
  137. * it to sign anything.
  138. *
  139. * @param from Signing identity (must have secret)
  140. * @param to Recipient of this signature
  141. * @return True if signature successful and chain of custody appended
  142. */
  143. inline bool sign(const Identity &from,const Address &to)
  144. {
  145. try {
  146. for(unsigned int i=0;((i<_maxCustodyChainLength)&&(i<ZT_MAX_CAPABILITY_CUSTODY_CHAIN_LENGTH));++i) {
  147. if (!(_custody[i].to)) {
  148. Buffer<(sizeof(Capability) * 2)> tmp;
  149. this->serialize(tmp,true);
  150. _custody[i].to = to;
  151. _custody[i].from = from.address();
  152. _custody[i].signatureLength = from.sign(tmp.data(),tmp.size(),_custody[i].signature,sizeof(_custody[i].signature));
  153. return true;
  154. }
  155. }
  156. } catch ( ... ) {}
  157. return false;
  158. }
  159. /**
  160. * Verify this capability's chain of custody and signatures
  161. *
  162. * @param RR Runtime environment to provide for peer lookup, etc.
  163. * @return 0 == OK, 1 == waiting for WHOIS, -1 == BAD signature or chain
  164. */
  165. int verify(const RuntimeEnvironment *RR,void *tPtr) const;
  166. template<unsigned int C>
  167. static inline void serializeRules(Buffer<C> &b,const ZT_VirtualNetworkRule *rules,unsigned int ruleCount)
  168. {
  169. for(unsigned int i=0;i<ruleCount;++i) {
  170. // Each rule consists of its 8-bit type followed by the size of that type's
  171. // field followed by field data. The inclusion of the size will allow non-supported
  172. // rules to be ignored but still parsed.
  173. b.append((uint8_t)rules[i].t);
  174. switch((ZT_VirtualNetworkRuleType)(rules[i].t & 0x3f)) {
  175. default:
  176. b.append((uint8_t)0);
  177. break;
  178. case ZT_NETWORK_RULE_ACTION_TEE:
  179. case ZT_NETWORK_RULE_ACTION_WATCH:
  180. case ZT_NETWORK_RULE_ACTION_REDIRECT:
  181. b.append((uint8_t)14);
  182. b.append((uint64_t)rules[i].v.fwd.address);
  183. b.append((uint32_t)rules[i].v.fwd.flags);
  184. b.append((uint16_t)rules[i].v.fwd.length); // unused for redirect
  185. break;
  186. case ZT_NETWORK_RULE_MATCH_SOURCE_ZEROTIER_ADDRESS:
  187. case ZT_NETWORK_RULE_MATCH_DEST_ZEROTIER_ADDRESS:
  188. b.append((uint8_t)5);
  189. Address(rules[i].v.zt).appendTo(b);
  190. break;
  191. case ZT_NETWORK_RULE_MATCH_VLAN_ID:
  192. b.append((uint8_t)2);
  193. b.append((uint16_t)rules[i].v.vlanId);
  194. break;
  195. case ZT_NETWORK_RULE_MATCH_VLAN_PCP:
  196. b.append((uint8_t)1);
  197. b.append((uint8_t)rules[i].v.vlanPcp);
  198. break;
  199. case ZT_NETWORK_RULE_MATCH_VLAN_DEI:
  200. b.append((uint8_t)1);
  201. b.append((uint8_t)rules[i].v.vlanDei);
  202. break;
  203. case ZT_NETWORK_RULE_MATCH_MAC_SOURCE:
  204. case ZT_NETWORK_RULE_MATCH_MAC_DEST:
  205. b.append((uint8_t)6);
  206. b.append(rules[i].v.mac,6);
  207. break;
  208. case ZT_NETWORK_RULE_MATCH_IPV4_SOURCE:
  209. case ZT_NETWORK_RULE_MATCH_IPV4_DEST:
  210. b.append((uint8_t)5);
  211. b.append(&(rules[i].v.ipv4.ip),4);
  212. b.append((uint8_t)rules[i].v.ipv4.mask);
  213. break;
  214. case ZT_NETWORK_RULE_MATCH_IPV6_SOURCE:
  215. case ZT_NETWORK_RULE_MATCH_IPV6_DEST:
  216. b.append((uint8_t)17);
  217. b.append(rules[i].v.ipv6.ip,16);
  218. b.append((uint8_t)rules[i].v.ipv6.mask);
  219. break;
  220. case ZT_NETWORK_RULE_MATCH_IP_TOS:
  221. b.append((uint8_t)3);
  222. b.append((uint8_t)rules[i].v.ipTos.mask);
  223. b.append((uint8_t)rules[i].v.ipTos.value[0]);
  224. b.append((uint8_t)rules[i].v.ipTos.value[1]);
  225. break;
  226. case ZT_NETWORK_RULE_MATCH_IP_PROTOCOL:
  227. b.append((uint8_t)1);
  228. b.append((uint8_t)rules[i].v.ipProtocol);
  229. break;
  230. case ZT_NETWORK_RULE_MATCH_ETHERTYPE:
  231. b.append((uint8_t)2);
  232. b.append((uint16_t)rules[i].v.etherType);
  233. break;
  234. case ZT_NETWORK_RULE_MATCH_ICMP:
  235. b.append((uint8_t)3);
  236. b.append((uint8_t)rules[i].v.icmp.type);
  237. b.append((uint8_t)rules[i].v.icmp.code);
  238. b.append((uint8_t)rules[i].v.icmp.flags);
  239. break;
  240. case ZT_NETWORK_RULE_MATCH_IP_SOURCE_PORT_RANGE:
  241. case ZT_NETWORK_RULE_MATCH_IP_DEST_PORT_RANGE:
  242. b.append((uint8_t)4);
  243. b.append((uint16_t)rules[i].v.port[0]);
  244. b.append((uint16_t)rules[i].v.port[1]);
  245. break;
  246. case ZT_NETWORK_RULE_MATCH_CHARACTERISTICS:
  247. b.append((uint8_t)8);
  248. b.append((uint64_t)rules[i].v.characteristics);
  249. break;
  250. case ZT_NETWORK_RULE_MATCH_FRAME_SIZE_RANGE:
  251. b.append((uint8_t)4);
  252. b.append((uint16_t)rules[i].v.frameSize[0]);
  253. b.append((uint16_t)rules[i].v.frameSize[1]);
  254. break;
  255. case ZT_NETWORK_RULE_MATCH_RANDOM:
  256. b.append((uint8_t)4);
  257. b.append((uint32_t)rules[i].v.randomProbability);
  258. break;
  259. case ZT_NETWORK_RULE_MATCH_TAGS_DIFFERENCE:
  260. case ZT_NETWORK_RULE_MATCH_TAGS_BITWISE_AND:
  261. case ZT_NETWORK_RULE_MATCH_TAGS_BITWISE_OR:
  262. case ZT_NETWORK_RULE_MATCH_TAGS_BITWISE_XOR:
  263. case ZT_NETWORK_RULE_MATCH_TAGS_EQUAL:
  264. case ZT_NETWORK_RULE_MATCH_TAG_SENDER:
  265. case ZT_NETWORK_RULE_MATCH_TAG_RECEIVER:
  266. b.append((uint8_t)8);
  267. b.append((uint32_t)rules[i].v.tag.id);
  268. b.append((uint32_t)rules[i].v.tag.value);
  269. break;
  270. case ZT_NETWORK_RULE_MATCH_INTEGER_RANGE:
  271. b.append((uint8_t)19);
  272. b.append((uint64_t)rules[i].v.intRange.start);
  273. b.append((uint64_t)(rules[i].v.intRange.start + (uint64_t)rules[i].v.intRange.end)); // more future-proof
  274. b.append((uint16_t)rules[i].v.intRange.idx);
  275. b.append((uint8_t)rules[i].v.intRange.format);
  276. break;
  277. }
  278. }
  279. }
  280. template<unsigned int C>
  281. static inline void deserializeRules(const Buffer<C> &b,unsigned int &p,ZT_VirtualNetworkRule *rules,unsigned int &ruleCount,const unsigned int maxRuleCount)
  282. {
  283. while ((ruleCount < maxRuleCount)&&(p < b.size())) {
  284. rules[ruleCount].t = (uint8_t)b[p++];
  285. const unsigned int fieldLen = (unsigned int)b[p++];
  286. switch((ZT_VirtualNetworkRuleType)(rules[ruleCount].t & 0x3f)) {
  287. default:
  288. break;
  289. case ZT_NETWORK_RULE_ACTION_TEE:
  290. case ZT_NETWORK_RULE_ACTION_WATCH:
  291. case ZT_NETWORK_RULE_ACTION_REDIRECT:
  292. rules[ruleCount].v.fwd.address = b.template at<uint64_t>(p);
  293. rules[ruleCount].v.fwd.flags = b.template at<uint32_t>(p + 8);
  294. rules[ruleCount].v.fwd.length = b.template at<uint16_t>(p + 12);
  295. break;
  296. case ZT_NETWORK_RULE_MATCH_SOURCE_ZEROTIER_ADDRESS:
  297. case ZT_NETWORK_RULE_MATCH_DEST_ZEROTIER_ADDRESS:
  298. rules[ruleCount].v.zt = Address(b.field(p,ZT_ADDRESS_LENGTH),ZT_ADDRESS_LENGTH).toInt();
  299. break;
  300. case ZT_NETWORK_RULE_MATCH_VLAN_ID:
  301. rules[ruleCount].v.vlanId = b.template at<uint16_t>(p);
  302. break;
  303. case ZT_NETWORK_RULE_MATCH_VLAN_PCP:
  304. rules[ruleCount].v.vlanPcp = (uint8_t)b[p];
  305. break;
  306. case ZT_NETWORK_RULE_MATCH_VLAN_DEI:
  307. rules[ruleCount].v.vlanDei = (uint8_t)b[p];
  308. break;
  309. case ZT_NETWORK_RULE_MATCH_MAC_SOURCE:
  310. case ZT_NETWORK_RULE_MATCH_MAC_DEST:
  311. memcpy(rules[ruleCount].v.mac,b.field(p,6),6);
  312. break;
  313. case ZT_NETWORK_RULE_MATCH_IPV4_SOURCE:
  314. case ZT_NETWORK_RULE_MATCH_IPV4_DEST:
  315. memcpy(&(rules[ruleCount].v.ipv4.ip),b.field(p,4),4);
  316. rules[ruleCount].v.ipv4.mask = (uint8_t)b[p + 4];
  317. break;
  318. case ZT_NETWORK_RULE_MATCH_IPV6_SOURCE:
  319. case ZT_NETWORK_RULE_MATCH_IPV6_DEST:
  320. memcpy(rules[ruleCount].v.ipv6.ip,b.field(p,16),16);
  321. rules[ruleCount].v.ipv6.mask = (uint8_t)b[p + 16];
  322. break;
  323. case ZT_NETWORK_RULE_MATCH_IP_TOS:
  324. rules[ruleCount].v.ipTos.mask = (uint8_t)b[p];
  325. rules[ruleCount].v.ipTos.value[0] = (uint8_t)b[p+1];
  326. rules[ruleCount].v.ipTos.value[1] = (uint8_t)b[p+2];
  327. break;
  328. case ZT_NETWORK_RULE_MATCH_IP_PROTOCOL:
  329. rules[ruleCount].v.ipProtocol = (uint8_t)b[p];
  330. break;
  331. case ZT_NETWORK_RULE_MATCH_ETHERTYPE:
  332. rules[ruleCount].v.etherType = b.template at<uint16_t>(p);
  333. break;
  334. case ZT_NETWORK_RULE_MATCH_ICMP:
  335. rules[ruleCount].v.icmp.type = (uint8_t)b[p];
  336. rules[ruleCount].v.icmp.code = (uint8_t)b[p+1];
  337. rules[ruleCount].v.icmp.flags = (uint8_t)b[p+2];
  338. break;
  339. case ZT_NETWORK_RULE_MATCH_IP_SOURCE_PORT_RANGE:
  340. case ZT_NETWORK_RULE_MATCH_IP_DEST_PORT_RANGE:
  341. rules[ruleCount].v.port[0] = b.template at<uint16_t>(p);
  342. rules[ruleCount].v.port[1] = b.template at<uint16_t>(p + 2);
  343. break;
  344. case ZT_NETWORK_RULE_MATCH_CHARACTERISTICS:
  345. rules[ruleCount].v.characteristics = b.template at<uint64_t>(p);
  346. break;
  347. case ZT_NETWORK_RULE_MATCH_FRAME_SIZE_RANGE:
  348. rules[ruleCount].v.frameSize[0] = b.template at<uint16_t>(p);
  349. rules[ruleCount].v.frameSize[1] = b.template at<uint16_t>(p + 2);
  350. break;
  351. case ZT_NETWORK_RULE_MATCH_RANDOM:
  352. rules[ruleCount].v.randomProbability = b.template at<uint32_t>(p);
  353. break;
  354. case ZT_NETWORK_RULE_MATCH_TAGS_DIFFERENCE:
  355. case ZT_NETWORK_RULE_MATCH_TAGS_BITWISE_AND:
  356. case ZT_NETWORK_RULE_MATCH_TAGS_BITWISE_OR:
  357. case ZT_NETWORK_RULE_MATCH_TAGS_BITWISE_XOR:
  358. case ZT_NETWORK_RULE_MATCH_TAGS_EQUAL:
  359. case ZT_NETWORK_RULE_MATCH_TAG_SENDER:
  360. case ZT_NETWORK_RULE_MATCH_TAG_RECEIVER:
  361. rules[ruleCount].v.tag.id = b.template at<uint32_t>(p);
  362. rules[ruleCount].v.tag.value = b.template at<uint32_t>(p + 4);
  363. break;
  364. case ZT_NETWORK_RULE_MATCH_INTEGER_RANGE:
  365. rules[ruleCount].v.intRange.start = b.template at<uint64_t>(p);
  366. rules[ruleCount].v.intRange.end = (uint32_t)(b.template at<uint64_t>(p + 8) - rules[ruleCount].v.intRange.start);
  367. rules[ruleCount].v.intRange.idx = b.template at<uint16_t>(p + 16);
  368. rules[ruleCount].v.intRange.format = (uint8_t)b[p + 18];
  369. break;
  370. }
  371. p += fieldLen;
  372. ++ruleCount;
  373. }
  374. }
  375. template<unsigned int C>
  376. inline void serialize(Buffer<C> &b,const bool forSign = false) const
  377. {
  378. if (forSign) b.append((uint64_t)0x7f7f7f7f7f7f7f7fULL);
  379. // These are the same between Tag and Capability
  380. b.append(_nwid);
  381. b.append(_ts);
  382. b.append(_id);
  383. b.append((uint16_t)_ruleCount);
  384. serializeRules(b,_rules,_ruleCount);
  385. b.append((uint8_t)_maxCustodyChainLength);
  386. if (!forSign) {
  387. for(unsigned int i=0;;++i) {
  388. if ((i < _maxCustodyChainLength)&&(i < ZT_MAX_CAPABILITY_CUSTODY_CHAIN_LENGTH)&&(_custody[i].to)) {
  389. _custody[i].to.appendTo(b);
  390. _custody[i].from.appendTo(b);
  391. b.append((uint8_t)1);
  392. b.append((uint16_t)_custody[i].signatureLength);
  393. b.append(_custody[i].signature,_custody[i].signatureLength);
  394. } else {
  395. b.append((unsigned char)0,ZT_ADDRESS_LENGTH); // zero 'to' terminates chain
  396. break;
  397. }
  398. }
  399. }
  400. // This is the size of any additional fields, currently 0.
  401. b.append((uint16_t)0);
  402. if (forSign) b.append((uint64_t)0x7f7f7f7f7f7f7f7fULL);
  403. }
  404. template<unsigned int C>
  405. inline unsigned int deserialize(const Buffer<C> &b,unsigned int startAt = 0)
  406. {
  407. *this = Capability();
  408. unsigned int p = startAt;
  409. _nwid = b.template at<uint64_t>(p); p += 8;
  410. _ts = b.template at<uint64_t>(p); p += 8;
  411. _id = b.template at<uint32_t>(p); p += 4;
  412. const unsigned int rc = b.template at<uint16_t>(p); p += 2;
  413. if (rc > ZT_MAX_CAPABILITY_RULES)
  414. throw ZT_EXCEPTION_INVALID_SERIALIZED_DATA_OVERFLOW;
  415. deserializeRules(b,p,_rules,_ruleCount,rc);
  416. _maxCustodyChainLength = (unsigned int)b[p++];
  417. if ((_maxCustodyChainLength < 1)||(_maxCustodyChainLength > ZT_MAX_CAPABILITY_CUSTODY_CHAIN_LENGTH))
  418. throw ZT_EXCEPTION_INVALID_SERIALIZED_DATA_OVERFLOW;
  419. for(unsigned int i=0;;++i) {
  420. const Address to(b.field(p,ZT_ADDRESS_LENGTH),ZT_ADDRESS_LENGTH); p += ZT_ADDRESS_LENGTH;
  421. if (!to)
  422. break;
  423. if ((i >= _maxCustodyChainLength)||(i >= ZT_MAX_CAPABILITY_CUSTODY_CHAIN_LENGTH))
  424. throw ZT_EXCEPTION_INVALID_SERIALIZED_DATA_OVERFLOW;
  425. _custody[i].to = to;
  426. _custody[i].from.setTo(b.field(p,ZT_ADDRESS_LENGTH),ZT_ADDRESS_LENGTH); p += ZT_ADDRESS_LENGTH;
  427. if (b[p++] == 1) {
  428. _custody[i].signatureLength = b.template at<uint16_t>(p);
  429. if (_custody[i].signatureLength > sizeof(_custody[i].signature))
  430. throw ZT_EXCEPTION_INVALID_SERIALIZED_DATA_INVALID_CRYPTOGRAPHIC_TOKEN;
  431. p += 2;
  432. memcpy(_custody[i].signature,b.field(p,_custody[i].signatureLength),_custody[i].signatureLength); p += _custody[i].signatureLength;
  433. } else {
  434. p += 2 + b.template at<uint16_t>(p);
  435. }
  436. }
  437. p += 2 + b.template at<uint16_t>(p);
  438. if (p > b.size())
  439. throw ZT_EXCEPTION_INVALID_SERIALIZED_DATA_OVERFLOW;
  440. return (p - startAt);
  441. }
  442. // Provides natural sort order by ID
  443. inline bool operator<(const Capability &c) const { return (_id < c._id); }
  444. inline bool operator==(const Capability &c) const { return (memcmp(this,&c,sizeof(Capability)) == 0); }
  445. inline bool operator!=(const Capability &c) const { return (memcmp(this,&c,sizeof(Capability)) != 0); }
  446. private:
  447. uint64_t _nwid;
  448. int64_t _ts;
  449. uint32_t _id;
  450. unsigned int _maxCustodyChainLength;
  451. unsigned int _ruleCount;
  452. ZT_VirtualNetworkRule _rules[ZT_MAX_CAPABILITY_RULES];
  453. struct {
  454. Address to;
  455. Address from;
  456. unsigned int signatureLength;
  457. uint8_t signature[ZT_SIGNATURE_BUFFER_SIZE];
  458. } _custody[ZT_MAX_CAPABILITY_CUSTODY_CHAIN_LENGTH];
  459. };
  460. } // namespace ZeroTier
  461. #endif