IEEE 802.11y-2008

IEEE 802.11y-2008 is an amendment to the IEEE 802.11-2007 standard that enables data transfer equipment to operate using the 802.11a protocol on a co-primary basis in the 3650 to 3700 MHz band except when near a grandfathered satellite earth station.[1] IEEE 802.11y is only being allowed as a licensed band. It was approved for publication by the IEEE on September 26, 2008.

Background

In June 2007 a "light licensing" scheme was introduced in 3650–3700 MHz band.[2] Licensees pay a small fee for a nationwide, non-exclusive license. They then pay an additional nominal fee for each high powered base station that they deploy. Neither the client devices (which may be fixed or mobile), nor their operators require a license, but these devices must receive an enabling signal from a licensed base station before transmitting. All stations must be identifiable in the event they cause interference to incumbent operators in the band. Further, there is a requirement that multiple licensees' devices are given the opportunity to transmit in the same area using a "contention based protocol" when possible. If interference between licensees, or the devices that they have enabled, cannot be mediated by technical means, licensees are required to resolve the dispute between themselves.

Features

The 3650 MHz rules allow for registered stations to operate at much higher power than traditional Wi-Fi gear (Up to 20 watts equivalent isotropically radiated power). The combination of higher power limits and enhancements made to the MAC timing in 802.11-2007, will allow for the development of standards based 802.11 devices that could operate at distances of 5 kilometres (3 mi) or more.

IEEE 802.11y adds three new concepts to 802.11-2007 base Standard:

Contention based protocol (CBP) – Enhancements have been made to the carrier sensing and energy detection mechanisms of 802.11 in order to meet the FCC's requirements for a contention based protocol.
Extended channel switch announcement (ECSA) provides a mechanism for an access point to notify the stations connected to it of its intention to change channels or to change channel bandwidth. This mechanism will allow for the WLAN to continuously choose the channel that is the least noisy and the least likely to cause interference. ECSA also provides for other functionalities besides dynamic channel selection based on quality & noise characteristics.
For instance, in 802.11y Amendment, the licensed operator can send ECSA commands to any stations operating under their control, registered or unregistered. ECSA is also used in 802.11n. In the 802.11n D2.0 implementation (which is shipping & undergoes Wi-Fi Alliance testing) 20 MHz & 40 MHz channel switching is provided for by the 11n PHY's ECSA implementation. Note that 802.11n is specified for operation in the 2.4 GHz and 5 GHz license exempt bands – but future amendments could permit 11n's PHY to operate in other bands as well.
Dependent station enablement (DSE) is the mechanism by which an operator extends and retracts permission to license exempt devices (referred to as dependent STAs in .11y) to use licensed radio spectrum. Fundamentally, this process satisfies a regulatory requirement that dictates that a dependent STAs operation is contingent upon its ability to receive periodic messages from a licensees base station, but DSE is extensible to other purposes in regards to channel management and coordination.
Some of the benefits of DSE include:
  • The enabling station (aka the licensee's base station) may or may not be the access point that the dependent STA connects to. In fact, an enabling station may enable both an access point and its clients. Also, although the dependent STAs are required by regulation to receive information from the enabling station over the air, they are not required to transmit over the air to complete the DSE process. A dependent STA may connect to a nearby Access Point for a short period of time and use the internet or some other means to complete the channel permissioning process with the enabling station. This flexibility reduces the likelihood of a dependent STA causing interference while attempting to connect to a far off enabling station.
  • The personal privacy and security of end users are ensured while, at the same time, licensees will have the information necessary to resolve disputes. All .11y devices transmit a unique identifier for the purpose of resolving interference. The high powered fixed stations and enabling stations transmit the location that they are operating from as their unique identifier. This location is also registered in an FCC database that will identify the licensee. The dependent STAs broadcast the location of the station that enabled it plus a unique string supplied by the enabling station. This ensures that the responsible party, the licensee, is contacted to resolve disputes. This mechanism also alleviates the problems associated with having the dependent STA broadcasting its location. Requiring all devices to have GPS or some other means of verifying their location would increase the cost and complexity of devices, and this solution may be inadequate indoors. This method also resolves fears that a mobile devices that constantly beacons its location could be used inappropriately by third parties to track a user's location.

Beyond the 3650 band

While the scope of 802.11y was limited to operation in the US 3650–3700 MHz band in the US, care was taken so that, if the light licensing concept was well received, it would not be necessary to start the 3+ year task group process in order for 802.11y devices to operate in other countries or in other frequency bands. As a result, lightly licensed 802.11 devices will be able to operate in any 5, 10, or 20 MHz channel that regulators make available by simply adding entries to the country and regulatory information tables in Annex I and J of 802.11.

Other potential bands for 802.11y include:

4.9 GHz – The regulatory classes and channel sizing needed to support the US public safety allocation at 4.9 GHz were added to 802.11-2007.[3] DSE and ECSA will allow frequency coordinators to have dynamic control over channel access.
5 GHz – Regulators and equipment manufacturers continue to debate the effectiveness of dynamic frequency selection (DFS) as a mechanism to avoid incumbent users in the 5 GHz bands. For example, Canada is not currently certifying 802.11 equipment for use in the 5600–5650 MHz band that is used by certain types of weather radars.[4] 802.11y may provide a solution that will allow WLANs access to these bands. Firstly, DSE can be used to create exclusion zones around incumbent users; Secondly, when combined with DSE, the 802.11y device identification mechanism allows devices that cause interference to be denied further access to a channel within seconds.
IMT-Advanced candidate bands (450–862, 2300–2400, 2700–2900, 3400–4200, and 4400–5000 MHz) – Since 2003, the International Telecommunication Union (ITU) has been studying the potential for IMT-advanced services (aka systems beyond IMT-2000 or 4G) to use a number of frequencies between 450 and 5000 MHz for the next generation of cellular infrastructure. These systems will be capable of transmitting 100 Mb/s when mobile and 1000 Mb/s while stationary. Unfortunately, with the exception of a small amount of UHF spectrum that will become available upon the completion of the transition from analogue to digital television, these bands are occupied on a piecemeal basis by incumbent users that are not easily relocated. Extensive sharing studies have concluded that co-existence with legacy equipment over the same area is not feasible, so traditional mobile licensing approaches are not practical. Yet academic studies have shown that at any give time, even in dense urban environment, there is ample unused spectrum across the candidate bands.[5] The problem is that usage by the primary services in these bands may change over time (as is the case with some radar systems) or vary by sub-channel based on location (as is the case in the TV bands "white spaces") 802.11y, along with the continued advances in multi-band radio technology, may provide a solution to this problem by granting channel access dynamically to users based on primary user avoidance techniques, location and time.
It is of note that the US has not been able to adopt a single position on the suitability of the 3650–3700 band for IMT-advanced, and that neither of the proposed positions seem to recognize the FCC's rules, or the standardization work that has been done to date.[6]

Applications

  • Back haul for Municipal Wi-Fi networks
  • Industrial automation and controls
  • Campus and enterprise networking
  • Last Mile Wireless Broadband Access
  • Fixed Point to point links
  • Fixed point to mobile links
  • Public safety and security networks
  • Wireless community networks or Wireless User Groups

Regulatory & 802.11y time-line

  • In 1995, NTIA (as per an OMB report) suggests the "transfer" of the 3650 MHz to 3700 MHz frequency band to "mixed use" status
  • Dec 1998: FCC's "3650 Allocation" press release announces this "primary" to "mixed use" transition, Dec 17 1998 (Kennard's FCC.. see FCC 98-337)[7]
  • Jan 1999: The spectrum from 3650 to 3700 is given "mixed-use status" and becomes available for non-federal use
  • Apr 2004: Original NPRM dated 04/23/2004 (FCC-04-100) from Powell's FCC.. Titled "Unlicensed Operation in the Band 3650–3700 MHz et al.". This is the proposed rules to maximize the efficient use of the 3650–3700 band and foster the introduction of new and advanced services[8]
  • Mar 2005: FCC releases R&O (from EOT) dated 03/16/2005, (FCC-05-56) which describes in detail the use of the 3650 band and is titled "Wireless Operations in the 3650–3700 MHz Band; Rules for Wireless Broadband Services in the 3650–3700 MHz Band"[9]
  • Mar 2005: 802.11's WNG requests that a CBP study group be formed (CBP-SG) to examine the opportunities afforded by FCC's 3650 MHz Report and Order and Memorandum Opinion and Order (FCC 05-56).
  • Nov 2005: The PAR and Five Criteria from the CBP-SG are approved by the 802 Executive Committee creating the 802.11y Task Group.
  • Jan 2007: First letter ballot received greater than 75% approval from 802.11 WG
  • Jun 2007: This is the FCC's MO&O dated 06/07/2007 from OET (FCC-07-99) in which the Commission addresses the many petitions for reconsideration and other filings that resulted from FCC's 05-56 Report and Order see above.[10]
  • Jun 2007: Draft 3.0 received 94% approval from 802.11 WG[11]
  • Jul 2007: Conditional approval was obtained from the 802.11 Working Group and granted by the Executive Committee to forward .11y to sponsor ballot.
  • Aug 2007: Last ex parte comment filed on proceeding 04-151 in response to FCC's NPRM and R&O describing operations in the 3650 band. Almost 450 comments are filed.[12] See WISPA's[13] filing for example.[14]
  • Nov 2007: FCC begins providing the means, via FCC's Universal Licensing System, to allow non-Federal operators to purchase non-exclusive nationwide licenses to allow for licensed operations in the 3650 Band. Licensee call signs are assigned upon approval of application.
  • Dec 21, 2007: IEEE/ISO Sponsor Ballot process begins for the 802.11 amendment y Standard using Draft 7 of the amendment.
  • Jun 5 2008: Start of final 15-day Sponsor Ballot Recirc (#4) to seek approval of a Draft 11 after small Clause 17 edit. This draft will be forwarded to RevCom and the IEEE SA's Standards Board for approval and publication.
  • Sep 26 2008: P802.11y is approved as a new standard during the IEEE-SA Standards Board's meeting that took place on this date. The final draft document for amendment y is forwarded to the IEEE's Standards Publications Department in preparation for printing. This Standard took about 31 "participant weeks" over 2.5 years to draft and ballot 74 pages and resolve 1638 comments for this amendment to the 802.11 Base Standard.

Comparison chart

Frequency
range,
or type
PHY Protocol Release
date[15]
Freq­uency Bandwidth Stream
data rate[16]
Max.
MIMO streams
Modulation Approx. range
In­door Out­door
(GHz) (MHz) (Mbit/s)
1–7 GHz DSSS[17], FHSS[A] 802.11-1997 June 1997 2.4 22 1, 2 DSSS, FHSS[A] 20 m (66 ft) 100 m (330 ft)
HR/DSSS[17] 802.11b September 1999 2.4 22 1, 2, 5.5, 11 CCK, DSSS 35 m (115 ft) 140 m (460 ft)
OFDM 802.11a September 1999 5 5, 10, 20 6, 9, 12, 18, 24, 36, 48, 54
(for 20 MHz bandwidth,
divide by 2 and 4 for 10 and 5 MHz)
OFDM 35 m (115 ft) 120 m (390 ft)
802.11j November 2004 4.9, 5.0
[B][18]
? ?
802.11y November 2008 3.7[C] ? 5,000 m (16,000 ft)[C]
802.11p July 2010 5.9 200 m 1,000 m (3,300 ft)[19]
802.11bd December 2022 5.9, 60 500 m 1,000 m (3,300 ft)
ERP-OFDM[20] 802.11g June 2003 2.4 38 m (125 ft) 140 m (460 ft)
HT-OFDM[21] 802.11n
(Wi-Fi 4)
October 2009 2.4, 5 20 Up to 288.8[D] 4 MIMO-OFDM
(64-QAM)
70 m (230 ft) 250 m (820 ft)[22]
40 Up to 600[D]
VHT-OFDM[21] 802.11ac
(Wi-Fi 5)
December 2013 5 20 Up to 693[D] 8 DL
MU-MIMO OFDM
(256-QAM)
35 m (115 ft)[23] ?
40 Up to 1600[D]
80 Up to 3467[D]
160 Up to 6933[D]
HE-OFDMA 802.11ax
(Wi-Fi 6,
Wi-Fi 6E)
May 2021 2.4, 5, 6 20 Up to 1147[E] 8 UL/DL
MU-MIMO OFDMA
(1024-QAM)
30 m (98 ft) 120 m (390 ft)[F]
40 Up to 2294[E]
80 Up to 5.5 Gbit/s[E]
80+80 Up to 11.0 Gbit/s[E]
EHT-OFDMA 802.11be
(Wi-Fi 7)
Sep 2024
(est.)
2.4, 5, 6 80 Up to 11.5 Gbit/s[E] 16 UL/DL
MU-MIMO OFDMA
(4096-QAM)
30 m (98 ft) 120 m (390 ft)[F]
160
(80+80)
Up to 23 Gbit/s[E]
240
(160+80)
Up to 35 Gbit/s[E]
320
(160+160)
Up to 46.1 Gbit/s[E]
UHR 802.11bn
(Wi-Fi 8)
May 2028
(est.)
2.4, 5, 6,
42, 60, 71
320 Up to
100000
(100 Gbit/s)
16 Multi-link
MU-MIMO OFDM
(8192-QAM)
? ?
WUR[G] 802.11ba October 2021 2.4, 5 4, 20 0.0625, 0.25
(62.5 kbit/s, 250 kbit/s)
OOK (multi-carrier OOK) ? ?
mmWave
(WiGig)
DMG[24] 802.11ad December 2012 60 2160
(2.16 GHz)
Up to 8085[25]
(8 Gbit/s)
OFDM,[A] single carrier, low-power single carrier[A] 3.3 m (11 ft)[26] ?
802.11aj April 2018 60[H] 1080[27] Up to 3754
(3.75 Gbit/s)
single carrier, low-power single carrier[A] ? ?
CMMG 802.11aj April 2018 45[H] 540,
1080
Up to 15015[28]
(15 Gbit/s)
4[29] OFDM, single carrier ? ?
EDMG[30] 802.11ay July 2021 60 Up to 8640
(8.64 GHz)
Up to 303336[31]
(303 Gbit/s)
8 OFDM, single carrier 10 m (33 ft) 100 m (328 ft)
Sub 1 GHz (IoT) TVHT[32] 802.11af February 2014 0.054–
0.79
6, 7, 8 Up to 568.9[33] 4 MIMO-OFDM ? ?
S1G[32] 802.11ah May 2017 0.7, 0.8,
0.9
1–16 Up to 8.67[34]
(@2 MHz)
4 ? ?
Light
(Li-Fi)
LC
(VLC/OWC)
802.11bb December 2023
(est.)
800–1000 nm 20 Up to 9.6 Gbit/s O-OFDM ? ?
IR[A]
(IrDA)
802.11-1997 June 1997 850–900 nm ? 1, 2 PPM[A] ? ?
802.11 Standard rollups
  802.11-2007 (802.11ma) March 2007 2.4, 5 Up to 54 DSSS, OFDM
802.11-2012 (802.11mb) March 2012 2.4, 5 Up to 150[D] DSSS, OFDM
802.11-2016 (802.11mc) December 2016 2.4, 5, 60 Up to 866.7 or 6757[D] DSSS, OFDM
802.11-2020 (802.11md) December 2020 2.4, 5, 60 Up to 866.7 or 6757[D] DSSS, OFDM
802.11me September 2024
(est.)
2.4, 5, 6, 60 Up to 9608 or 303336 DSSS, OFDM
  1. ^ a b c d e f g This is obsolete, and support for this might be subject to removal in a future revision of the standard
  2. ^ For Japanese regulation.
  3. ^ a b IEEE 802.11y-2008 extended operation of 802.11a to the licensed 3.7 GHz band. Increased power limits allow a range up to 5,000 m. As of 2009, it is only being licensed in the United States by the FCC.
  4. ^ a b c d e f g h i Based on short guard interval; standard guard interval is ~10% slower. Rates vary widely based on distance, obstructions, and interference.
  5. ^ a b c d e f g h For single-user cases only, based on default guard interval which is 0.8 microseconds. Since multi-user via OFDMA has become available for 802.11ax, these may decrease. Also, these theoretical values depend on the link distance, whether the link is line-of-sight or not, interferences and the multi-path components in the environment.
  6. ^ a b The default guard interval is 0.8 microseconds. However, 802.11ax extended the maximum available guard interval to 3.2 microseconds, in order to support Outdoor communications, where the maximum possible propagation delay is larger compared to Indoor environments.
  7. ^ Wake-up Radio (WUR) Operation.
  8. ^ a b For Chinese regulation.

References

  1. ^ "See FCC File FCC-05-56A1.pdf paragraph 7, page 4" (PDF).
  2. ^ "FCC 07-99". US Federal Communications Commission.
  3. ^ "802.11-2007". IEEE SA. Archived from the original on 2007-07-08. Retrieved 2007-07-30.
  4. ^ "Low-power Licence-exempt Radiocommunication Device" (PDF). Industry Canada. Additional requirements for the band 5600–5650 MHz: Until further notice, devices subject to this Section shall not be capable of transmitting in the band 5600–5650 MHz, so that Environment Canada weather radars operating in this band are protected.
  5. ^ Brodersen, Bob (2004-11-01). "A Workshop on Cognitive" (PDF). BWRC. Retrieved 2007-07-30.
  6. ^ "FCC SEEKS COMMENT ON RECOMMENDATIONS APPROVED BY THE ADVISORY COMMITTEE FOR THE 2007 WORLD RADIOCOMMUNICATION CONFERENCE" (PDF). US Federal Communications Commission.
  7. ^ "Commission Proposes to Allocate the 3650-3700 MHz Band for Fixed Services; Freezes New or Major Modified Earth Station Applications". www.fcc.gov.
  8. ^ "Statement of chairman Michael K. Powell" (PDF).
  9. ^ "FCC-05-56A1.pdf" (PDF).
  10. ^ "FCC-07-99A1" (PDF).
  11. ^ "SUMMARY REPORT OF THE JULY 2007 MEETING OF IEEE 802.11". IEEE SA.
  12. ^ FCC Field Comments Search Search on proceeding 04-151
  13. ^ "WISPA". www.wispa.org.
  14. ^ WISPA. "Before the Federal Communications Commission, Washington DC 20554". Archived from the original on 2013-04-08.
  15. ^ "Official IEEE 802.11 working group project timelines". January 26, 2017. Retrieved 2017-02-12.
  16. ^ "Wi-Fi CERTIFIED n: Longer-Range, Faster-Throughput, Multimedia-Grade Wi-Fi Networks" (PDF). Wi-Fi Alliance. September 2009.
  17. ^ a b Banerji, Sourangsu; Chowdhury, Rahul Singha. "On IEEE 802.11: Wireless LAN Technology". arXiv:1307.2661.
  18. ^ "The complete family of wireless LAN standards: 802.11 a, b, g, j, n" (PDF).
  19. ^ The Physical Layer of the IEEE 802.11p WAVE Communication Standard: The Specifications and Challenges (PDF). World Congress on Engineering and Computer Science. 2014.
  20. ^ IEEE Standard for Information Technology- Telecommunications and Information Exchange Between Systems- Local and Metropolitan Area Networks- Specific Requirements Part Ii: Wireless LAN Medium Access Control (MAC) and Physical Layer (PHY) Specifications. (n.d.). doi:10.1109/ieeestd.2003.94282
  21. ^ a b "Wi-Fi Capacity Analysis for 802.11ac and 802.11n: Theory & Practice" (PDF).
  22. ^ Belanger, Phil; Biba, Ken (2007-05-31). "802.11n Delivers Better Range". Wi-Fi Planet. Archived from the original on 2008-11-24.
  23. ^ "IEEE 802.11ac: What Does it Mean for Test?" (PDF). LitePoint. October 2013. Archived from the original (PDF) on 2014-08-16.
  24. ^ "IEEE Standard for Information Technology". IEEE Std 802.11aj-2018. April 2018. doi:10.1109/IEEESTD.2018.8345727.
  25. ^ "802.11ad - WLAN at 60 GHz: A Technology Introduction" (PDF). Rohde & Schwarz GmbH. November 21, 2013. p. 14.
  26. ^ "Connect802 - 802.11ac Discussion". www.connect802.com.
  27. ^ "Understanding IEEE 802.11ad Physical Layer and Measurement Challenges" (PDF).
  28. ^ "802.11aj Press Release".
  29. ^ "An Overview of China Millimeter-Wave Multiple Gigabit Wireless Local Area Network System". IEICE Transactions on Communications. E101.B (2): 262–276. 2018. doi:10.1587/transcom.2017ISI0004.
  30. ^ "IEEE 802.11ay: 1st real standard for Broadband Wireless Access (BWA) via mmWave – Technology Blog". techblog.comsoc.org.
  31. ^ "P802.11 Wireless LANs". IEEE. pp. 2, 3. Archived from the original on 2017-12-06. Retrieved Dec 6, 2017.
  32. ^ a b "802.11 Alternate PHYs A whitepaper by Ayman Mukaddam" (PDF).
  33. ^ "TGaf PHY proposal". IEEE P802.11. 2012-07-10. Retrieved 2013-12-29.
  34. ^ "IEEE 802.11ah: A Long Range 802.11 WLAN at Sub 1 GHz" (PDF). Journal of ICT Standardization. 1 (1): 83–108. July 2013. doi:10.13052/jicts2245-800X.115.

Read other articles:

  لمعانٍ أخرى، طالع سيرك (توضيح). سيرك Circus   ستوديو لـبريتني سبيرز الفنان بريتني سبيرز تاريخ الإصدار 28 نوفمبر 2008  التسجيل صيف 2008 النوع بوب المدة 46:15 اللغة الانجليزية التسلسل الزمني لـبريتني سبيرز تعتيم 2007 فيم فيتال (المرأة الخطرة) 2011 أغاني منفردة من سيرك Circus زير نسا...

 

 Nota: Para outros significados, veja Perozes. Perozes Nacionalidade Império Sassânida Etnia Parta Ocupação Nobre Religião Zoroastrismo Perozes Carano (em persa médio: Pērōz ī Kārin; em grego clássico: Πηρωζ Καρην) foi um nobre parta do século III, membro da Casa de Carano ativo no reinado do xá Artaxes I (r. 224–242). É conhecido apenas a partir da inscrição Feitos do Divino Sapor. Aparece na lista de dignitários da corte e está classificado n...

 

As referências deste artigo necessitam de formatação. Por favor, utilize fontes apropriadas contendo título, autor e data para que o verbete permaneça verificável. (Agosto de 2020) Esta página cita fontes, mas que não cobrem todo o conteúdo. Ajude a inserir referências. Conteúdo não verificável pode ser removido.—Encontre fontes: ABW  • CAPES  • Google (N • L • A) (Agosto de 2020) Rumiko Takahashi Nome completo 高橋

ペガサス航空 8622便 2013年に撮影された事故機事故の概要日付 2018年1月13日概要 滑走路からの逸脱(詳しくは調査中)現場 トルコ トラブゾン県トラブゾン トラブゾン空港 北緯40度59分42秒 東経39度47分23秒 / 北緯40.9951度 東経39.7897度 / 40.9951; 39.7897座標: 北緯40度59分42秒 東経39度47分23秒 / 北緯40.9951度 東経39.7897度 / 40.9951; 39.7897乗客数 162乗

 

Portuguese Securities Market CommissionComissão do Mercado de Valores MobiliáriosAgency overviewFormed10 May 1991TypeLegal entity governed by public lawJurisdictionPortugalHeadquartersRua Laura Alves, n.º 4 - 1050-138 LisbonAgency executiveGabriel Bernardino, Chair of the Management BoardKey documentDecree-Law No. 142-A/91, of 10 April (inception of CMVM in portuguese)Websitehttp://www.cmvm.pt/ The Portuguese Securities Market Commission, also known by its initials as CMVM, was incepted vi...

 

British transhumanist David PearcePearce in 2013BornApril 1959 (age 64)Alma materBrasenose College, Oxford[1]OrganisationHumanity+Known forThe Hedonistic Imperative (1995)MovementTranshumanism, veganismWebsitewww.hedweb.com David Pearce (born April 1959)[2] is a British transhumanist philosopher.[3][4][5] He is the co-founder of the World Transhumanist Association, currently rebranded and incorporated as Humanity+.[6][7&#...

Tudor bei einer Galaaufführung Antony Tudor (gebürtig William Cook; * 4. April 1908 in London; † 19. April 1987 in New York) war ein englischer Balletttänzer, Choreograf und Tanzpädagoge. Leben Tudor begann seine professionelle Tanzausbildung 1928 bei Marie Rambert. Schon frühzeitig choreografierte er: Mit 23 Jahren schrieb er für Ramberts Tänzer Cross Garter'd, später Lysistrata, The Planets und andere Arbeiten, welche im Mercury Theatre aufgeführt wurden. Es folgten Jardin aux Li...

 

Book by Colin Dexter The Daughters of Cain Cover of the first editionAuthorColin DexterCountryUnited KingdomLanguageEnglishSeriesInspector Morse series, #11GenreCrime novelPublisherMacmillanPublication date11 November 1994Media typePrint (Hardcover)Pages320ISBN0-333-63004-1OCLC31763316Dewey Decimal823/.914 20LC ClassPR6054.E96 D38 1994Preceded byThe Way Through the Woods Followed byDeath Is Now My Neighbour  The Daughters of Cain is a crime novel by Colin Dexter....

 

Not to be confused with Zastava M 98/48. Bolt-action rifle Puška M.48 7,9 mm(Rifle M.48 7.9 mm) TypeBolt-action riflePlace of originYugoslaviaService historyIn service1950–1964(as the standard Yugoslav service rifle)Used bySee UsersWarsLebanese Civil WarYugoslav WarsProduction historyDesigned1948Produced1950–1965No. built1,224,000+VariantsM48, M48A, M48B, M48BOSpecificationsMass3.9 kg (8.6 lb)Length1105 mm (43.5 in)Barrel length597 m...

2016 book by E.O. Wilson Half-Earth Cover of the first editionAuthorE. O. WilsonSubjectBiodiversityPublisherLiverightPublication date2016Media typePrint (Hardcover and Paperback)Pages272 (paperback)ISBN978-1-63149-252-5Preceded byThe Meaning of Human Existence (2014)  Half-Earth: Our Planet's Fight for Life is a 2016 book by the biologist E. O. Wilson, the last in a trilogy beginning with The Social Conquest of Earth (2012) and The Meaning of Human Existence (2014). Half-Earth ...

 

Cataloging of published recordings by the German rock band Scorpions Scorpions discographyStudio albums19Live albums6Compilation albums29Video albums13Music videos43Singles92Covers23 The following is a comprehensive discography of Scorpions, a German rock band. The band have released 19 studio albums, six live albums, 13 video albums, 29 compilation albums, one cover album, 92 singles and 43 music videos. They have sold between 75 and 100 million records worldwide.[1][2] Album...

 

Romance language of Portugal This article has multiple issues. Please help improve it or discuss these issues on the talk page. (Learn how and when to remove these template messages) This article's lead section may be too short to adequately summarize the key points. Please consider expanding the lead to provide an accessible overview of all important aspects of the article. (July 2015) This article needs additional citations for verification. Please help improve this article by adding citati...

Little Big Adventure Разработчик Adeline Software International Издатель Electronic Arts (Европа)Activision(Северная Америка, Азия, Океания)Electronic Arts Victor (Япония на PS) Часть серии Little Big Adventure[d] Дата выпуска PC 1994 1994PlayStation 19 июля 1996 март 1997 Жанр Экшн-адвенчура Создатели Геймдизайнеры Frédérick Raynal[d][1], Yaël Bar...

 

Village development committee in Janakpur Zone, NepalSumnam Pokhari सुम्नाम पोखरीVillage development committeeSumnam PokhariLocation in NepalCoordinates: 27°12′0″N 86°13′30″E / 27.20000°N 86.22500°E / 27.20000; 86.22500Country   NepalZoneJanakpur ZoneDistrictSindhuli DistrictPopulation (1991) • Total2,126Time zoneUTC+5:45 (Nepal Time) Sumnam Pokhari is a village development committee in Sindhuli Distri...

 

English actor (1921–2003) This article is about the British actor. For the American actor, see Robert Brown (American actor). This article needs additional citations for verification. Please help improve this article by adding citations to reliable sources. Unsourced material may be challenged and removed.Find sources: Robert Brown British actor – news · newspapers · books · scholar · JSTOR (March 2013) (Learn how and when to remove this templat...

Method of software testing This article needs additional citations for verification. Please help improve this article by adding citations to reliable sources. Unsourced material may be challenged and removed.Find sources: Black-box testing – news · newspapers · books · scholar · JSTOR (October 2017) (Learn how and when to remove this template message) Black box systemsSystemBlack box, Oracle machineMethods and techniquesBlack-box testing, Blackboxing R...

 

Leah Rosenfeld, Hiland, California, 1973 Leah Rosenfeld (October 25, 1908 – November 12, 2006) was a railroad telegraph operator and station agent whose 1968 lawsuit against the Southern Pacific Railroad and the state of California helped to end job and wage discrimination against women and ensure equal opportunities for women in the railroad industry. Early life and beginning of railroad career At age 16 in 1924, Rosenfeld had worked as a clerk and paralegal in a law firm. In October 1944,...

 

Pabrikan mobil Jerman BMW berlaga di arena Formula Satu sejak musim 1950 sampai yang terakhir 2009. Meskipun tidak penuh ikut selama waktu tersebut, mereka mampu mencatat beberapa hasil yang terbilang lumayan. BMW turun dalam dua kapasitas berbeda yaitu sebagai tim penuh dan sebagai pemasok mesin. Mitra kerja BMW yang cukup sukses ketika menjadi pemasok mesin adalah tim Williams dan Sauber Kemitraan bersama Williams Saat musim 1998 berjalan, Williams menandatangani perjanjian jangka panjang d...

Species of moth Hyposmocoma irregularis Illustrations in Fauna Hawaiiensis: 15. Hyposmocoma liturata, 16. Hyposmocoma mimica, 17. Hyposmocoma parda, 18. Hyposmocoma lixiviella, 19. Hyposmocoma saliaris, 20. Hyposmocoma phalacra, 21. Hyposmocoma pseudolita, 22. Hyposmocoma irregularis, 23. Hyposmocoma fervida, 24. Hyposmocoma torella, 25. Hyposmocoma arenella, 26. Hyposmocoma nebulifera, 27. Hyposmocoma rubescens, 28. Hyposmocoma scolopax Scientific classification Domain: Eukaryota Kingdom: An...

 

Hindu temple in Coimbatore, India Ayyappan Temple, CoimbatoreReligionAffiliationHinduismDistrictCoimbatore DistrictLocationLocationSiddhapudur, CoimbatoreStateTamil NaduCountryIndiaGeographic coordinates11°01′14.9″N 76°58′22.1″E / 11.020806°N 76.972806°E / 11.020806; 76.972806ArchitectureTypeSouth India, TemplesElevation444 m (1,457 ft) Ayyappan Temple is a Hindu Ayyappan Temple located in Siddhapudur in Coimbatore, India. It is dedicated to Ayyap...

 

Strategi Solo vs Squad di Free Fire: Cara Menang Mudah!