PREVENTIN G AH INPUT OUTPUT B LOCKING ATTACK TO A WIRE LE SS
ACCE SS POINT
Background
[0001] The Institute of E lectrical and Electronics E ngineers (IE EE ) 802 .11 u is an extension of the IE EE 802.11 standard to improve the ability of mobile stations (e. ., laptop computers, sm artphones, tablets, etc.) to automatically discover, authenticate, and use a wireless access point (AP ), which delivers a cellular network-like m obile broadband experience that users want. An IEE E 802 .11 u enabled wireless AP may provide an un authenticated mobile station with query capabilities of the wireless AP and its backhaul access networks before associating with the wireless AP . Exam ples of environm ents that may use an IE EE 802.1 1 u wireless AP can include educational campuses, air orts, hotels, and /or retail outlets, am ong others.
Brief Description of the Drawings
[0002] Figure 1 is a prior art diagram illustrating an instance of an input/output blocking attack to a wireless access point.
[0003] Figure 2 is a diagram illustrating an exam ple of preventing an input/output blocking attack to a wireless access point according to the present disclosure.
[0004] Figure 3 is a diagram illustrating an exam le of preventing an input/output blocking attack to a wireless access point according to the present disclosure.
[0005] Figure 4 is a diagram illustrating an exam ple of preventing an input/output blocking attack to a wireless access point according to the present disclosure.
[0006] Figure 5 is a diagram illustrating an exam ple of preventing an input/output blocking attack to a wireless access point according to the present disclosure.
[0007] Figure 6 is a diagram illustrating an exam pie of a wireless access point according to the present disclosure.
[0008] Figure 7 is a flow chart illustrating an example of a m ethod for preventing an input/output blocking attack to a wireless access point according to the present disclosure .
Detailed Description
[0009] The generic advertisement service (GAS) is a component of IEE E 802 .11 u that enables a mobile station to query an advertisement server for information elements (IE s) via a wireless AP . GAS provides for la e r 2 transport of an advertisement server's responses between the advertisement server, a wireless AP , and a m obile station. The wireless AP is responsible for relaying the mobile station's query to the ad ertisement server in the carrier's network and for delivering the ad ertisement server's response back to the mobile station.
[0010] To help ensure that mobile stations that are far away from a wireless AP can comm unicate with the wireless AP , GAS m essages are specified to be transmitted with a low fram e rate to help protect against wireless si gna I i nterfe re nee . H o wever , such reli ab le t ra nsm ission of G AS m essa ges poses a dangerto the wireless AP for input/output (I/O) degradation if the wireless AP has to deliver many relatively large access network query protocol (ANQP) lE s such that normal downstream traffic is affected. ANQP is a query and response protocol used by a m obile station to discover a range of lEs including the o erator's domain name , roam ing partners accessible via the wireless AP along with their credential type and extensible authentication
protocol (E AP) method supported for authentication, Internet protocol (I P) address type availability, among other lE s.
[0011] The danger to the wireless AP can be exploited by an I/O attack . An example of an I O attack includes an attacking station rapidly querying the wireless AP for IE s with different (e .g., spoofing) media access control (MAC) addresses so that the I/O bandwidth of the wireless AP is blocked because the transmission of GAS comeback responses can occupy a lot of air time . To help address this potential attack , systems, m ethods, and ma chine -readable and executable instructions are provid d for preventing an input /output blocking attack to a wireless access point. Prevention can include instruct ions to receive a first com eback request from a querying station and to transm it a first portion of a response in a first com eback response frame including an indication of a comeback delay. Prevention can include instructions to receive a second comeback request from the querying station and transm it a second portion of the response in a second comeback response tram e in response to the second comeback request complying with the comeback delay. Prevention can include instructions to drop the second com eback request from the querying station in response to the second comeback request not com plying with the comeback delay. E xam pies of the present disclosure can slowdown the rate of GAS comeback responses in the wireless AP 'stransm ission queue without significantly increasing query completion tim e for legitim ate mobile stations. Furthermore , exam pies of the present disclosure do not require operational deviations from the IE EE 802.11 u standard that could cause the wireless AP to be noncom pliant with the standard.
[0012] I n the present disclosure, reference is made to the accompanying drawings that form a part hereof , and in which is shown by way of illustration howa num ber of examples of the disclosure can be practiced. These exam pies are described in sufficient detail to enable those of ordinary skill in the art to practice the exam ples of this disclosure , and it is to be understood that other examples can be used and that process, electrical , and/or structural changes can be made without departing from the scope of the present disclosure .
[0013] The figures herein followa num bering convention in which the first digit corresponds to the drawing figure number and the rem aining digits identify an elem ent or component in the drawing. For example, reference numeral 204 in Figure 2 can identify element Ί04", while an analogous element may e identified as 304 in Figure 3. Elements shown in the various figures herein can be added, exchanged, and/or eliminated so as to provide a number of additional examples of the present disclosure. In addition, the proportion and the relative scale of the elements provi ed in the figures are intended to illustrate the examples of the present disclosure, and should not be taken in a limiting sense.
[0014] Figure 1 is a prior art diagram illustrating an instance of an I/O blocking attack to a wireless AP 104. When the wireless interface of the wireless AP 04 is busy for transm ission , newly arrived frames (e.g., frames 112-1 , 112 -2 ) to be se nt m ay be i nserted into a tran sm ission queu e of the wireless AP 104 until com petition of the transmission of the previous fram e. I f the wireless interface of the wireless AP 104 is frequently occupied for sending ANQP responses, which can take a relatively longtime to finish, the latency of normal downstream data traffic can be prolonged . Furthermore, if a burst of ANQP responses deplete the transmission queue of the wireless AP 104, the downstream data fram es maybe dropped at the wireless interface of the wireless AP 104, which may cause packet loss for normal communications.
[0015] An attacking mobile station 102 m ay send numerous GAS initial requests 106 with spoofing source AC addressesto query m ultiple ANG.P IE s such as venue nam e, network access identifier (TJ Al) realm list, etc. The attacking mobile station 102 can en queue the spoofing MAC addresses. When the query responses from the advertisement server (not illustrated in Figure 1) are buffered by the wireless AP 104, the attacking mobile station 102 m ay send a burst of GAS comeback requests 108 including the spoofing MAC addresses to fetch the GAS com eback responses 112-1,112-2 (e .g., the entire responses) each included in a GAS comeback response frame 110, or as much of the response as will fit within the respective fram e 110, from the wireless AP 104 , which may quickly block the wireless \S bandwidth of the wireless AP 104. The spoofing M AC addresses make it m ore difficult forthe wireless AP 104 to detect
the attack and force the wireless AP 1 04 to spend more time sending ANGP responses to the spoofing AGs because the responses m ay not be
acknowledged by the interface card of the attacking mobile station 02 due to the difference from the interface's real AC address. As a result, the wireless AP 104 may retransm it each ANGP response until a retry limit is reached.
[0016] Figure 2 is a diagram illustrating an exam ple of preventing an IAD blocking attack to a wireless AP 204 according to the present disclosure. A mobile station 202 can transmit a GAS initial request 206 to the wireless AP 204 . An ANGP query can be encapsulated in the GAS initial request 206 message. The wireless AP 204 can allocate a m emory block (control block) to store information of the query such as a mobile station MAC address, a dialog identifier, etc., then send an internal query 21 8 to an advertisement server 214 (e .g., located in an operator's core network) based on the GAS initial request 206 in response to receiving the GAS initial request 206. Although not specifically illustrated , the wireless AP 204 can query the advertisement server 214 in response to receiving a first GAS comeback request 208-1 that complies with the comeback delay associated with the GAS initial response 208 (e .g., rather than querying the advertisem ent server 21 4 in response to receiving the GAS initial request 206). The wireless AP 204 can transm it a GAS initial response 21 6 to the querying mobile station 202 . Although not specifically illustrated, the GAS initial response 216 can include an indication of a comeback delay, which effectively tells the querying m obile station 202 "I will get your information from the advertisement server, please come back later to fetch it." The wireless AP 204 can store (e .g., in the control block) the ANGP information elements received according to the response 220 from the advertisem ent server 21 4.
[0017] According to som e examples of the present disclosure, the wireless AP 204 can (e.g. , via a non -transitory machine readable medium storing instructions executable by a processing resource of the wireless AP 204) receive a first comeback request 208-1 from a querying station 202. The wireless AP 204 can transmit a first portion 222-1 of a response in a first comeback response frame 210-1 including an indication of a comeback delay
224-1 . The com eback delay 224-1 instructs the querying station 202 to request a next portion and/or a remainder of the comeback response after a delay of a particular length of tim e (e.g. , x milliseconds). As opposed to a potential solution invol ing a rate -contra II able transm ission queue for the wi re less access point 204, this solution movesthe timer scheduling and overhead from the wireless AP 204 to the querying station 202. The wireless AP 204 can tim estamp the first comeback response 21 0-1 (e.g ., t1 ). The wireless AP 204 can set a tim eout of the buffered response 220 from the advertisem ent server 214 as the com eback delay 224-1 (e.g ., x) plus a relaxed estim ation oftotal transmission time of the comeback response fram e 210-1 and the comeback request 208-2 (e.g., Δ). For example, assuming that the GAS m essages are transmitted at 1 megabit per second ( bps) and the SI ZE of the com eback request 208-2 and com eback response 210-1 is 1000 bits, Δ can be set as
1000 1000 ^
7χ = .0l4seconds (1 4ms), assuming t at the retry limit is 7. The
ΊΜ~+ΊΜ
combination of dropping earlier arriving comeback requests 208 -X (described below) and timeout can force querying stations 202 to obey the comeback delay 224-1 or have their subsequent comeback requests dropped.
[0018] The wireless AP 204 can receive a second comeback request 208-2 from the querying station 202 and transmit a second portion 222-2 of the response in a second comeback response fram e 21 0-2 in response to the second comeback request 208-2 com plying with the com eback delay 224-1 . The wireless AP 204 can receive the second com eback request 208-2 at time t2 and verify compliance of the second comeback request 208-2 with the comeback delay 224-1 by checking whether (t2-t1 ) falls within the range [x, χ+Δ]. If (J2-t1 ) does not fall within the range , the second com eback request 208- 2 can b e drop ped . I f (t2-t1 ) d oes fa II with in the ran ge , t he wi rele ss AP 204 can take additional actions (e .g., m ake responses) as described herein. The wireless AP 204 can proactive ly split the comeback response into portions sm aller than an entire m axim al packet delivery unit (MP DU) 212 and send one portion 222-1 , 222-2,... , 222-N in each com eback response frame 210-1 , 210- 2,... , 210-N . For example, the portion 222-1 of the response in comeback
response fram 21 0-1 can be lessthan a frame capacity of the comeback response fram e 21 0-1 . The portions 222-1 , 222-2,... , 222-N in comeback responses 21 0-1 , 210-2,.,. 21 0-N can include inform ation from the control block . In som e exam les, and as illustrated in Figure 2, the size of the portions 222-1 , 222-2 ,... , 222-N can be equal .
[0019] The wireless AP 204 can drop the second com eback request 208- X from the querying station 202 in response to the second comeback request 208-X not complying with the comeback delay 224-1 . As illustrated in Figure 2, the second comeback request 208-X can indicate either a comeback request from the original querying station 202 that does not comply with the comeback del ay 224 -1 (in a tte rn ati ve to th e il lu strated com eba ck requ est 208 -2 , whi ch does com ply with the comeback delay 224-1 ), or the second comeback request 208-X can indicate a comeback request from a querying station other than station 202 or a sam e querying station 202 with a different (e .g., spoofing) MAC address. For exam ple, when the first com eback request 208-1 includes a first MAC address for the querying station 202, the wireless AP 204 can drop the comeback request 208-X in response to the comeback request 208-X including a different MAC address and in response to the com eback request 208-X being received during the comeback delay 224-1 . This can help the wireless AP 204 prevent the attacks described herein .
[0020] Figure 3 is a diagram illustrating an exam ple of preventing an IAD blocking attack to a wireless AP 304 according to the present disclosure. The mobile station 302, wireless AP 304, advertisem ent server 31 4, GAS initial request 306, advertisem ent server query 31 8, GAS initial response 316 , and response from the advertisement server 320 can be analogous to the mobile station 202, wireless AP 204, advertisement server 214 , GAS initial request 206, advertisem ent server query 21 8, GAS initial response 216 , and response from the advertisem ent server 220 illustrated and described with respect to Figure 2.
[0021] According to som e exam pies of the present disclosure, the wireless AP 304 can (e.g. , via a non -transitory machine readable medium storing instructions executable by a processing resource of the wireless AP 304) receive a first comeback request 308-1 from a querying station 302. The
wireless AP 304 can transmit a first portion 322-1 , having a first size, of a re sp onse i n a first com e back respo nse fram e 310 -1 in d udi ng an i ndi catio n of a comeback delay 324-1 . The wireless AP 304 can receive a second comeback request 308-2 from the querying station 302 and transmit a second portion 322- 2, having a second size that is larger than the first size, of the response in a second comeback response fram e 31 0-2 in response to the second com eback request 308-2 com plying with the com eback delay 324-1 . The wireless AP 304 can proactive ly split the comeback response into portions sm aller than an entire P DU 31 2 and send one portion 322-1 , 322-2,... , 322 -N in each comeback response fram e 31 0-1 , 31 0-2,... , 310-N . For exam pie , the portion 322-1 of the response in comeback response fram e 31 0-1 can be less than a frame capacity of the comeback response fram e 31 0-1 .
[0022] In some examples, and as illustrated in Figure 3 , the size of the portions 322-1 , 322-2,... , 322-N can be different. For example, the size of a first portion 322-1 can be smaller than the size of a second portion 322-2 (and the size of the second portion 322-2 can be smaller than a size of the nth portion 322-N). The wireless AP 304 can transmit subsequent portions 322-2,... , 322-N of the response having sizes larger than previous portions 322-1 , 322-2 of the response until an entirety 31 2 of the response has been transm itted in response to respective comeback requests 308-2 ,... , 308-N complying with respective comeback delays 324-1 , 324-2. Such exam pie s can help to reduce query completion time associated with splitting a response into multiple portions 322- 1 , 322-2,... , 322-N and transmitting the portions 322-1 , 322-2,... , 322-N from the AP 304 to the querying station 302 in multiple GAS com eback response frames 31 0-1 , 31 0-2,... , 31 0-N . Once (or each tim e) a querying station 302 complies with a comeback delay 324-1 , 324-2, an increased likelihood that the querying station 302 is not an attacking station exists. Thus, the querying station 302 can benefit from complyin with the comeback delay(s) 324-1 , 324-2 by subsequently receiving larger portion(s) 322-1 , 322-2,... , 322-N of the response (e.g ., until the portion size reaches the MP DU).
[0023] The wireless AP 304 can receive a first com eback response from a second querying station (e.g ., station 302). The wireless AP 304 can transm it
a first portion (e.g ., portion 322-1 ) of a second response including an indication of a comeback delay (e.g ., comeback delay 324-1 )to the second querying station. The wireless AP 304 can drop a second comeback request 308-X from the second querying station (e .g., station 302) in response to the second comeback request 308-X not complying with the comeback delay (e .g., comeback delay 324-1 ).
[0024] Figure 4 is a diagram illustrating an exam le of preventing an I D blocking attack to a wireless AP 404 according to the present disclosure. The mobile station 402, wireless AP 404, advertisem ent server 41 4, GAS initial request 406, advertisem ent server query 41 8, GAS initial response 416 , and response 420 from the advertisem ent server 41 4 can be analogous to the mobile station 202, wireless AP 204, advertisem ent server 21 4, GAS initial request 206, advertisem ent server query 21 8, GAS initial response 216 , and response from the advertisement server 220 illustrated and described with respect to Figure 2.
[0025] According to som e examples of the present disclosure, the wireless AP 404 can (e.g. , via a non -transitory machine readable medium storing instructions executable by a processing resource of the wireless AP 404) receive a first comeback request 408-1 from a querying station 402. The wireless AP 404 can transmit a first portion 422-1 of a response in a first comeback response frame 410-1 including an indication of a first comeback delay 424-1 . The wireless AP 404 can receive a second com eback request 408-2 from the querying station 402 and transmit a second portion 422-2 of the response in a second comeback response fram e 41 0-2 including an indication of a second comeback delay 424-2 that is shorter than the first com eback delay 424-1 in response to the second comeback request 408-2 complying with the first comeback delay 424-1 . The wireless AP 402 can transmit subsequent portions 422-2, 422-3,... , 422-N of the response including indications of subsequent comeback delays 424-2, 424-3 that are shorter than previous comeback delays 424-1 , 424-2 included with previous portions 422-1 , 422-2, 422-3 of the comeback response in response to respective com eback requests 408-2 , 408-3 ,... , 408-N com plying with respective comeback delays 424-1 , 424-
2, 424-3. Such e amples can help to reduce query completion tim e associated wth splitting a response into m ultiple portions 422-1 , 422-2 , 422-3 ,... , 422-N and transmitting the portions 422-1 , 422-2, 422-3,... , 422-N from the AP 404 to the querying station 402 in m ultiple GAS comeback response fram es 410-1 , 410-2 , 410-3 ,... , 41 0-N . Once (or each time) a querying station 402 com plies wth a com eback delay 424-1 , 424-2, an increased likelihood that the querying station 402 is not an attacking station exists. Thus, the querying station 402 can benefit from com plying wth the com eback delay(s) 424-1 , 424-2 by
subsequently having shorter comeback delays 424-1 , 424-2, 424-3 associated wth respective GAS com eback response frames 41 0-1 , 41 0-2, 410-3,... , 410-N .
[0026] The wreless AP 404 can pro activel split the com eback response into portions smaller than an entire MP DU 41 2 and send one portion 422-1 , 422-2 , 422-3 ,... , 422-N in each comeback response frame 410-1 , 410-2 , 41 0- 3,... , 41 0-N . For example, the portion 422-1 of the response in comeback response fram e 41 0-1 can be lessthan a frame capacity of the comeback response fram e 41 0-1 . I n some examples, and as illustrated in Figure 4, the size of the portions 422-1 , 422-2 , 422-3 ,... , 422-N can be equal . Any comeback request can be dropped in response to the comeback request not complying wth a respective comeback delay. For example, the wreless AP 404 can drop the second comeback request 408-X from the querying station 402 in response to the second com eback request 408-X not complying wth the first comeback delay 424-1 .
[0027] Figure 5 is a diagram illustrating an exam ple of preventing an IAD blocking attack to a wireless AP 504 according to the present disclosure. The mobile station 502, wireless AP 504, dropped GAS comeback request 508-X , MP DU 51 2, advertisement server 51 4, GAS initial request 306, advertisement server query 518, GAS initial response 516 , and response from the
advertisem ent server 51 4 can be analogousto the mobile station 202, wireless AP 204 , dropped GAS com eback request 208-X , MP DU 21 2, advertisem ent server 21 4, GAS initial request 206 , advertisement server query 21 8, GAS initial response 21 6, and response from the advertisement server 220 illustrated and described wth respect to Figure 2.
[0028] According to som e examples o† the present disclosure, the wireless AP 504 can (e.g. , via a non -transitory machine readable medium storing instructions executable by a processing resource of the wireless AP 504) receive a first comeback request 508-1 from a querying station 502. The wireless AP 504 can transmit a first portion 522-1 , having a first size, of a re sp onse i n a first com e back respo nse fram e 510 -1 in d udi ng an i ndi catio n of a first comeback delay 524-1 . The wireless AP 504 can receive a second comeback request 508-2 from the querying station 502 and transm it a second portion 522-2, having a second size greater than the first size of the first portion 522-1 , of the response in a second comeback response frame 51 0-2 including an indication of a second comeback delay 524-2 that is shorter than the first comeback delay 524-1 in response to the second comeback request 508-2 complying with the first comeback delay 524-1 .
[0029] The wireless AP 502 can transm it subsequent portions 522-2, 522-3 of the response having sizes larger than previous portions 522-1 , 522-2 of the response and including indications of subsequent comeback delays 524- 2, 524-N that are shorter than previous com eback delays 524-1 , 524-2 induded with previous portions 522-1 , 522-2 of the com eback response in response to respective com eback requests 508-2, 508-3,... , 508-N complying with respective com eback delays 524-1 , 524-2, ,,, 524-N until an entirety 51 2 of the response has been transmitted in response to respective com eback requests 508-2 ,... , 508-N complying with respective comeback delays 524-1 , 524-2,... , 524-N . Such examples can help to reduce query com pletion time associated with splitting a resp onse i nto m ultip le p ortio ns 522 -1 , 522 -2 , 522 -3 and transmitting the portions 522-1 , 522-2, 522-3 from the AP 504 to the querying station 502 in multiple GAS comeback response frames 510-1 , 510-2, 51 0-3 . Once (or each time) a querying station 502 com plies with a comeback delay 524-1 , 524-2 ,... , 524-N , an increased likelihood that the querying station 502 is not an attacking station exists. Thus, the querying station 502 can benefit from complying with the com eback delay(s) 524-1 , 524-2,... , 524-N by subsequently receiving larger portion(s) 522-1 , 522-2 , 522-3 of the response and by subsequently having shorter comeback delays 524-1 , 524-2,... , 524-N
associated with respective GAS com eback response frames 51 0-1 , 51 0-2, 51 0- 3. Changes in the siie of the portions and/or the length of the com eback delays can be secret to querying stationsto help prevent an attacking station from guessing the comeback delay for making legitim ate com eback requests.
[0030] Figure 6 is a diagram illustrating an exam ple of a wireless AP 604 according to the present disclosure . The wireless AP 604 can utiliie software, hardware , firm are, and/or logic to perform a num ber of functions. The wireless AP 604 can be a com bination of hardware and program instructions configured to perform a num ber of functions (e.g., actions). The hardware, for example, can include a number of processing resources 626 and a num ber of mem ory resources 628, such as a ma chine -readable m edium (M RM) or other memory resources 628. The m emory resources can be internal and/or external to the wirel ess AP 604 (e . . , t he wi rele ss AP 604 can incl ude i nte n al mem ory re source s and have access to external memory resources). The program instructions (e.g., machine-readable instructions (MR I)) can include instructions stored on the MRM to implem ent a particular function (e.g. , an action such as preventing an I/O blocking attack). The set of M RI can be executable by one or more of the processing resources 626. The memory resources 628 can be coupled to the wireless AP 604 in a wired and/or wireless manner. For example, the m emory resources 628 can be an internal mem ory, a portable mem ory, a portable disk , and/or a mem ory associated with another resource, e.g. , enabling M Rl to be transferred and/or executed across a network such as the Internet.
[0031] M emory resources 628 can be non4ransitory and can include volatile and /or non-volatile memory. Volatile m emory can include memory that depends upon power to store information , such as varioustypes of dynamic random access m emory (DRAM) am ong others. Non-volatile memory can include m em ory that does not depend upon power to store inform ati on.
Exam pies of non-volatile mem ory can include solid state media such as flash mem ory, electrically erasable programmable read-only memory (EE PROM), phase change random access m emory (PC RAM ), magnetic mem ory such as a hard disk, tape drives, floppy disk, and/or tape memory, optical discs, digital
versatile discs (DVD), Blu-ray discs (BD), com pact discs (CD), and/or a solid state drive (SSD), etc., as well as other types o† m achine-readable media .
[0032] The processing resources 626 can be coupled to the m emory resources 628 via a com munication path 630. The comm unication path 630 can be local or remote to the wireless AP 604. Exam pies of a local communication path 630 can include an electronic bus internal to a m achine, where the memory resources 628 are in communication with the processing resources 626 via the electronic bus. Examples of such electronic buses can include Industry
Standard Architecture (ISA), Peripheral C omponent Interconnect (PC I), Advanced Technology Attachm ent (ATA), Small Com uter System Interface (SCSI), Universal Serial Bus (USB), among other types of electronic buses and variants thereof . The com munication path 630 can be such that the m emory resources 628 are remote from the processing resources 626 , such as in a network connection between the mem ory resources 628 and the processing resources 626. That is, the communication path 630 can be a network connection. Exam pies of such a network connection can include local area network (LAN), wide area network (yVAN), personal area network (P AN), and the Internet, am ong others.
[0033] As shown in Figure 6 , the RI stored in the mem ory resources 628 ca n be seg m ented into a n um be r of m odul es 632 -1 , 632-2, 632-3 that wne n executed by the processing resources 626 can perform a number of functions. As used herein a m odule includes a set of instructions included to perform a particular task or action. The number of m odules 632-1 , 632-2, 632-3 can be sub-modules of other modules. For exam pie , the drop m odule 632-3 can be a sub-module of the receive module 632-1 and/or the drop m odule 632-3 and the receive m odule 632-1 can be contained within a single m odule. Furthermore, the num ber of m odules 632-1 , 632-2, 632-3 can comprise individual modules separate and distinct from one another. E xamples are not limited to the specific modules 632-1 , 632-2, 632-3 illustrated in Figure 6.
[0034] The receive m odule 632-1 can comprise MRI that can be executed by the processing resources 626 to receive requests (e.g ., G AS initial requests, GAS comeback requests, etc.) from a querying station and/or to receive
responses from an advertisement server, among other receptions, as described herein. Although not specifically illustrated, the receive m odule 632-1 can make use of a number of antennas associated with the wireless AP 604.
[0035] The transmit m odule 632-2 can comprise M Rl that are executed by the proce ssi ng resou rces 626 to t ra nsm it re spo nses (e .g., GAS initial response, GAS com eback responses, etc.) to a querying station and/or to transmit queries to an advertisement server, among other transm issions, as described herein. Although not specifically illustrated, the transm it m odule 632- 2 can m ake use of a number of antennas associated with the wireless AP 604.
[0036] The drop module 632-3 can comprise MR I that are executed by the processing resources 626 to drop requests (e.g ., GAS com eback requests) received from a querying station in response to the requests not com lying with a comeback delay, in response to the requests not having a MAC address in an appropriate control block in the memory resources 628 of the wireless AP 604 , and /or in response to other conditions as described herein.
[0037] Figure 7 is a flow chart illustrating an example of a m ethod for preventing an input/output blocking attack to a wireless access point according to the present disclosure . At block 740, a first comeback request from a querying station can be received with a wireless AP . At block 742, a first portion of a response can be transm itted with the wireless AP in a first comeback response fram e having a first size and including an indication of a com eback delay. At block 744, a second com eback request can be received from the querying station with the wireless AP . At block 746 , a second portion of the response can be transm itted with the wireless AP in a second comeback response fram e having a size that is larger than the first size in response to the second comeback request com lying with the com eback delay.
[0038] As used herein , "logic" is an alternative or additional processing resource to perform a particular action and/or function, etc., described herein, which includes hardware, e .g., various form s of transistor logic, application specific integrated circuits (ASICs), etc., as opposed to com puter executable instructions, e.g ., software firm are, etc. , stored in m emory and executable by a processor.
[0039] As used herein , "a" or "a number of something can refer to one or more such things. For exam pie , "a number of widgets" can refer to one or m ore wid ets.
[0040] The above specification, exam ples and data provide a description of the method and applications, and use of the system and m ethod of the present disclosure. Since many examples can be made without departing from the spirit and scope of the system and method of the present disclosure, this specification merely sets forth som e of the m any possible embodim ent configurations and im plementations.