IP Library Granted Patent US 10,685,196
Granted Patent B2
US 10,685,196 · App. 14/064,119 · Granted Jun 16, 2020

Apparatus and method for producing an appropriate quantity of RFID reads

Inventor: David E. Bellows (Wantagh, NY)
Assignee: Symbol Technologies, LLC
G06K7/10356G06K7/0008
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Quick Facts
Patent No.
US 10,685,196
App. No.
14/064,119
Granted
Jun 16, 2020
Kind
B2
Abstract

An RFID reader configures each of a plurality of antennas operating in the RFID reader to operate in one of a first state and a second state, configures each of the plurality of antennas to operate in a first session and a second session and to operate in opposite states in the first session and the second session, and configures adjacent antennas or adjacent groups of antennas to operate in opposite states in the first session and the second session. During operation, each of the plurality of antennas is configured to read an RFID tag within a range of the antenna when a state of the RFID tag for the session in which the antenna is configured to operate matches the state in which the antenna is configured to operate and to switch the state of the RFID tag to the opposite state for each session.

Claims (44)

1. A radio frequency identification (RFID) reader comprising:

a plurality of antennas each configured to operate in one of a first state and a second state opposite the first state, the plurality of antennas including, a first antenna having a first transmission pattern, a second antenna having a second transmission pattern, a third antenna having a third transmission pattern, a fourth antenna having a fourth transmission pattern, a fifth antenna having a fifth transmission pattern, a sixth antenna having a sixth transmission pattern, a seventh antenna having a seventh transmission pattern, and an eighth antenna having an eighth transmission pattern,

the plurality of antennas being arranged such that the first transmission pattern is sandwiched between the second transmission pattern and the eighth transmission pattern, the second transmission pattern is sandwiched between the first transmission pattern and the third transmission pattern, the third transmission pattern is sandwiched between the second transmission pattern and the fourth transmission pattern, the fourth transmission pattern is sandwiched between the third transmission pattern and the fifth transmission pattern, the fifth transmission pattern is sandwiched between the fourth transmission pattern and the sixth transmission pattern, the sixth transmission pattern is sandwiched between the fifth transmission pattern and the seventh transmission pattern, the seventh transmission pattern is sandwiched between the sixth transmission pattern and the eighth transmission pattern, the eighth transmission pattern is sandwiched between the first transmission pattern and the seventh transmission pattern, and a total transmission pattern of the plurality of antennas extends over a 360-degree range; and

a processor configured to:

(a) control the first antenna to operate in the first state and a first session;

(b) subsequent to (a), control the first antenna to operate in the second state and a second session;

(c) subsequent to (b), control the second antenna to operate in the first state and the first session;

(d) subsequent to (c), control the second antenna to operate in the second state and the second session;

(e) subsequent to (d), control the third antenna to operate in the second state and the first session;

(f) subsequent to (e), control the third antenna to operate in the first state and the second session;

(g) subsequent to (f), control the fourth antenna to operate in the second state and the first session;

(h) subsequent to (g), control the fourth antenna to operate in the first state and the second session;

(i) subsequent to (h), control the fifth antenna to operate in the first state and the first session;

(j) subsequent to (i), control the fifth antenna to operate in the second state and the second session;

(k) subsequent to (j), control the sixth antenna to operate in the first state and the first session;

(l) subsequent to (k), control the sixth antenna to operate in the second state and the second session;

(m)sub sequent to (l), control the seventh antenna to operate in the second state and the first session;

(n) subsequent to (m), control the seventh antenna to operate in the first state and the second session;

(o) subsequent to (n), control the eighth antenna to operate in the second state and the first session; and

(p) subsequent to (o), control the eighth antenna to operate in the first state and the second session,

wherein during operation each of the plurality of antennas is configured to read an RFID tag within a range of the antenna when a state of the RFID tag for the session in which the antenna is configured to operate matches the state in which the antenna is configured to operate during the session and to switch the state of the RFID tag to the opposite state for the session in which the antenna is configured to operate.

2. The RFID reader of claim 1 , wherein the processor is further configured to control each of the plurality of antennas to operate during a respective time slot that is separate from the respective time slot of any other of the plurality of antennas.

3. A radio frequency identification (RFID) reader comprising:

a plurality of antennas each configured to operate in one of a first state and a second state opposite the first state, the plurality of antennas including, a first antenna having a first transmission pattern, a second antenna having a second transmission pattern, a third antenna having a third transmission pattern, a fourth antenna having a fourth transmission pattern, a fifth antenna having a fifth transmission pattern, a sixth antenna having a sixth transmission pattern, a seventh antenna having a seventh transmission pattern, and an eighth antenna having an eighth transmission pattern,

the plurality of antennas being arranged such that the first transmission pattern is sandwiched between the second transmission pattern and the eighth transmission pattern, the second transmission pattern is sandwiched between the first transmission pattern and the third transmission pattern, the third transmission pattern is sandwiched between the second transmission pattern and the fourth transmission pattern, the fourth transmission pattern is sandwiched between the third transmission pattern and the fifth transmission pattern, the fifth transmission pattern is sandwiched between the fourth transmission pattern and the sixth transmission pattern, the sixth transmission pattern is sandwiched between the fifth transmission pattern and the seventh transmission pattern, the seventh transmission pattern is sandwiched between the sixth transmission pattern and the eighth transmission pattern, the eighth transmission pattern is sandwiched between the first transmission pattern and the seventh transmission pattern, and a total transmission pattern of the plurality of antennas extends over a 360-degree range; and

a processor configured to:

(a) control the first antenna to operate in the first state and a first session;

(b) subsequent to (a), control the second antenna to operate in the first state and the first session;

(c) subsequent to (b), control the third antenna to operate in the second state and a first session;

(d) subsequent to (c), control the fourth antenna to operate in the second state and the first session;

(e) subsequent to (d), control the fifth antenna to operate in the first state and the first session;

(f) subsequent to (e), control the sixth antenna to operate in the first state and the first session;

(g) subsequent to (f), control the seventh antenna to operate in the second state and the first session;

(h) subsequent to (g), control the eighth antenna to operate in the second state and the first session;

(i) subsequent to (h), control the first antenna to operate in the second state and the second session;

(j) subsequent to (a), control the second antenna to operate in the second state and the second session;

(k) subsequent to (b), control the third antenna to operate in the first state and a second session;

(l) subsequent to (c), control the fourth antenna to operate in the first state and the second session;

(m)sub sequent to (d), control the fifth antenna to operate in the second state and the second session;

(n) subsequent to (e), control the sixth antenna to operate in the second state and the second session;

(o) subsequent to (f), control the seventh antenna to operate in the first state and the second session;

(p) subsequent to (g), control the eighth antenna to operate in the first state and the second session,

wherein during operation each of the plurality of antennas is configured to read an RFID tag within a range of the antenna when a state of the RFID tag for the session in which the antenna is configured to operate matches the state in which the antenna is configured to operate during the session and to switch the state of the RFID tag to the opposite state for the session in which the antenna is configured to operate.

4. The RFID reader of claim 1 , wherein the processor is further configured to control each of the plurality of antennas to operate during a respective time slot that is separate from the respective time slot of any other of the plurality of antennas.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Aug 17, 2015
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: SYMBOL TECHNOLOGIES, INC.
Reel/Frame 036371/0738 →
SECURITY AGREEMENT Recorded Oct 31, 2014
From: ZIH CORP.; LASER BAND, LLC; ZEBRA ENTERPRISE SOLUTIONS CORP.; SYMBOL TECHNOLOGIES, INC.
To: MORGAN STANLEY SENIOR FUNDING, INC. AS THE COLLATERAL AGENT
Reel/Frame 034114/0270 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 26, 2013
From: BELLOWS, DAVID E.
To: SYMBOL TECHNOLOGIES, INC.
Reel/Frame 031484/0102 →
Continuity (1)
Related Publication 20150116088A1 · Apr 30, 2015